AP Chemistry Flashcards: Complete 9-Unit Course Review

Review all nine AP Chemistry units with 450 cards covering concepts, models, equations, calculation setup, and laboratory reasoning.

Um þennan stokk

Review AP® Chemistry through 450 independently written English flashcards arranged in the course's nine-unit sequence. The deck moves from atomic structure and compound structure through properties of substances and mixtures, reactions, kinetics, thermochemistry, equilibrium, acids and bases, and thermodynamics and electrochemistry. Prerequisites come before dependent models and calculations.

What the cards practice

The cards use five recall paths: concept to explanation; model or representation to interpretation; equation to meaning and use; short setup to a result with units and reasoning; and laboratory observation to a chemical conclusion. They cover definitions, relationships, conditions, contrasts, particle and energy models, focused calculation steps, measurements, errors, and visible changes.

Selected reverse and contrast prompts appear only when the reverse direction has one clear standalone target. The deck excludes mechanical permutations, graph-dependent prompts that require a missing figure, copied test formats, long multipart derivations, and visual recall tied to third-party figures. The review scheduler handles long-term spacing after installation.

See the official AP Chemistry course page for College Board's current course requirements.

The Common knowledge · CC0 1.0 label applies only to the independently written prompts, answers, examples, organization, metadata, and inherited original cover, to the extent applicable rights exist. It does not claim ownership of scientific facts or equations.

This is an independent, unofficial study aid. It is not affiliated with, endorsed by, sponsored by, or official material from College Board or the AP Program. AP® is a trademark registered by the College Board, which is not affiliated with, and does not endorse, this product. No College Board examination questions, answer choices, scoring materials, curriculum text, logos, or trade dress were copied.

Spjöld í þessum stokki

  1. Spjald 1

    Spurning

    What does one mole count?

    Svar

    Exactly 6.02214076 × 10^23 representative particles.

  2. Spjald 2

    Spurning

    What does a peak in an element's mass spectrum represent?

    Svar

    An isotope with a particular mass-to-charge ratio; for singly charged monatomic ions, the position tracks isotopic mass.

  3. Spjald 3

    Spurning

    What does an empirical formula show?

    Svar

    The lowest whole-number ratio of the elements' atoms in a compound.

  4. Spjald 4

    Spurning

    How does a mixture differ from a pure substance at the particle level?

    Svar

    A mixture contains chemically distinct representative units in variable proportions; a pure substance contains one element or compound with fixed composition. Different isotopes do not make an elemental sample a mixture.

  5. Spjald 5

    Spurning

    Which particles make up an atom's nucleus?

    Svar

    Protons and neutrons. Electrons occupy the space outside the nucleus.

  6. Spjald 6

    Spurning

    What does a larger binding energy on a PES spectrum mean?

    Svar

    More energy is required to remove that electron, so it is held more strongly by the nucleus.

  7. Spjald 7

    Spurning

    How does atomic radius generally change across a period and down a group?

    Svar

    It decreases from left to right as effective nuclear charge rises, and it increases down a group as additional electron shells increase distance and shielding.

  8. Spjald 8

    Spurning

    What typical ion charge do Group 1 metals form?

    Svar

    +1, by losing their one valence electron.

  9. Spjald 9

    Spurning

    How do you convert moles to particles?

    Svar

    Multiply by Avogadro's number: particles = moles × 6.022 × 10^23 mol^-1.

  10. Spjald 10

    Spurning

    How is average atomic mass estimated from isotope data?

    Svar

    Add each isotopic mass multiplied by its fractional abundance.

  11. Spjald 11

    Spurning

    How is an element's mass percent in a compound calculated?

    Svar

    Divide the mass contributed by that element by the compound's molar mass, then multiply by 100%.

  12. Spjald 12

    Spurning

    How can measured elemental composition reveal a sample's purity?

    Svar

    Compare the measured mass fraction with the fraction expected for the pure compound; a mismatch indicates another component.

  13. Spjald 13

    Spurning

    How do you build a ground-state electron configuration with the Aufbau principle?

    Svar

    For ordinary ground states, move through the periodic table in atomic-number order, filling each s, p, d, or f block as it appears. The subshell capacities are s², p⁶, d¹⁰, and f¹⁴. For example, Br is [Ar] 4s² 3d¹⁰ 4p⁵.

  14. Spjald 14

    Spurning

    What does the relative area or height of an ideal PES peak indicate?

    Svar

    The relative number of electrons in the corresponding subshell.

  15. Spjald 15

    Spurning

    How does first ionization energy generally change across a period and down a group?

    Svar

    It increases from left to right as effective nuclear charge rises, and it decreases down a group as distance and shielding make a valence electron easier to remove.

  16. Spjald 16

    Spurning

    Why do elements in the same group form similar compounds?

    Svar

    Their ground-state valence patterns repeat, including which outer subshells are full or partly full. That leads to similar bonding and typical ion charges.

  17. Spjald 17

    Spurning

    How do you convert a sample's mass to moles?

    Svar

    Divide its mass by its molar mass: n = m/M.

  18. Spjald 18

    Spurning

    Which mass-spectrum interpretation lies outside the usual single-element model used in this deck?

    Svar

    Assigning peaks in mixtures or peaks from multiply charged or polyatomic species; the standard model uses singly charged monatomic ions of one element.

  19. Spjald 19

    Spurning

    What does the law of definite proportions state?

    Svar

    Every pure sample of a given compound has the same element mass ratios.

  20. Spjald 20

    Spurning

    Why can two samples of the same mixture have different compositions?

    Svar

    Mixture components are physically combined, so their relative amounts are not fixed by a chemical formula.

  21. Spjald 21

    Spurning

    How does Coulomb's law connect charge and separation to attraction?

    Svar

    Attraction grows with the magnitude of the charge product and decreases with the square of the separation distance.

  22. Spjald 22

    Spurning

    Which PES electrons usually appear at the highest binding energy?

    Svar

    Core electrons closest to the nucleus, because they feel the strongest nuclear attraction.

  23. Spjald 23

    Spurning

    How does electron affinity generally change across a period and down a group?

    Svar

    Electron gain generally becomes more favorable from left to right across a period and less favorable down a group as distance and shielding increase. Stable subshell patterns create substantial exceptions.

  24. Spjald 24

    Spurning

    Why are alkali metals generally more reactive down the group?

    Svar

    Their valence electron is farther from the nucleus and easier to remove.

  25. Spjald 25

    Spurning

    How many moles are in 18.0 g of H₂O?

    Svar

    About 0.999 mol. Use 18.0 g ÷ 18.02 g mol^-1.

  26. Spjald 26

    Spurning

    An element is 75% isotope 10 and 25% isotope 11; what is its average atomic mass?

    Svar

    10.25 u. Calculate (0.75 × 10) + (0.25 × 11).

  27. Spjald 27

    Spurning

    A compound is 40.0% C, 6.7% H, and 53.3% O by mass; what is its empirical formula?

    Svar

    CH₂O. For a 100 g sample, convert each mass to moles and divide by the smallest amount.

  28. Spjald 28

    Spurning

    A 10.0 g impure sample contains 8.5 g of the target compound; what is its mass-percent purity?

    Svar

    85%. Calculate (8.5 g ÷ 10.0 g) × 100%.

  29. Spjald 29

    Spurning

    Which electrons are removed first when a transition metal forms a cation?

    Svar

    Electrons in the occupied orbital with the highest principal quantum number: 4s before 3d. For example, Fe²⁺ is [Ar] 3d⁶.

  30. Spjald 30

    Spurning

    A PES spectrum has peaks proportional to 2, 2, and 6 electrons; which configuration fits?

    Svar

    1s² 2s² 2p⁶, the configuration of Ne.

  31. Spjald 31

    Spurning

    How does electronegativity generally change across a period and down a group?

    Svar

    It increases from left to right across a period and decreases down a group as atomic size and shielding increase.

  32. Spjald 32

    Spurning

    What empirical formula results from Al³⁺ and O²⁻?

    Svar

    Al₂O₃, because two Al³⁺ ions balance three O²⁻ ions.

  33. Spjald 33

    Spurning

    How does a particle's mass in atomic mass units relate to its molar mass?

    Svar

    The numerical value is the same: a molecular or formula-unit mass of x u corresponds to a molar mass of x g mol^-1.

  34. Spjald 34

    Spurning

    What does the tallest isotope peak usually indicate in a simple mass spectrum?

    Svar

    The most abundant isotope, assuming comparable detection response and singly charged ions.

  35. Spjald 35

    Spurning

    How much oxygen is present in 25.0 g of a compound that is 32.0% oxygen by mass?

    Svar

    8.00 g O. Multiply 25.0 g by 0.320.

  36. Spjald 36

    Spurning

    What does a particle diagram with two unbonded species in changing ratios represent?

    Svar

    A mixture, because more than one particle type is present and the ratio is not fixed in a formula unit.

  37. Spjald 37

    Spurning

    What distinguishes valence electrons from core electrons?

    Svar

    Valence electrons are available for bonding or ion formation; main-group valence electrons occupy the outermost shell, while transition metals may also use (n−1)d electrons. Core electrons mainly shield nuclear charge.

  38. Spjald 38

    Spurning

    Why can PES peak groups reveal an atom's occupied subshells?

    Svar

    Electrons in different subshells require distinct removal energies, producing separate binding-energy groups.

  39. Spjald 39

    Spurning

    How do ion radii compare with neutral atoms and within an isoelectronic series?

    Svar

    Cations are smaller than their neutral atoms, while anions are larger. Among species with the same electron count, more protons pull the electrons closer and produce the smaller radius.

  40. Spjald 40

    Spurning

    What formula is expected for a compound between a Group 2 metal M and a Group 17 nonmetal X?

    Svar

    MX₂, because M forms M²⁺ and X forms X⁻.

  41. Spjald 41

    Spurning

    When is a covalent bond considered nonpolar?

    Svar

    When the bonded atoms have identical or very similar electronegativities, so the shared electron density is distributed approximately evenly.

  42. Spjald 42

    Spurning

    Why does a bonded pair of atoms have an equilibrium bond length?

    Svar

    At that separation, attractive and repulsive interactions balance at minimum potential energy.

  43. Spjald 43

    Spurning

    How are particles arranged in an ionic solid?

    Svar

    Cations and anions occupy a repeating three-dimensional lattice held by electrostatic attraction.

  44. Spjald 44

    Spurning

    What model explains bonding in a metal?

    Svar

    Positive metal cores are held together by attraction to mobile, delocalized valence electrons.

  45. Spjald 45

    Spurning

    How do you construct a Lewis diagram?

    Svar

    Count total valence electrons, adding electrons for a negative charge and subtracting them for a positive charge. Choose a skeleton, connect atoms with single bonds, complete terminal duets or octets, and place remaining electrons on the central atom. Add multiple bonds if needed, then check the electron total and formal charges.

  46. Spjald 46

    Spurning

    What does resonance mean in a molecule or ion?

    Svar

    Resonance uses two or more valid Lewis diagrams with the same atom arrangement but different electron placement. The actual electron distribution is a hybrid; equivalent contributors have equal weight.

  47. Spjald 47

    Spurning

    What determines molecular shape in VSEPR theory?

    Svar

    Electron domains around the central atom arrange to minimize repulsions.

  48. Spjald 48

    Spurning

    How does an ionic bond differ from a covalent bond?

    Svar

    Ionic bonding is attraction among oppositely charged ions in an extended structure; covalent bonding uses shared electron density between atoms.

  49. Spjald 49

    Spurning

    What happens to potential energy when bonded atoms are pushed much closer than equilibrium?

    Svar

    Potential energy rises sharply because nucleus–nucleus and electron–electron repulsions dominate.

  50. Spjald 50

    Spurning

    Why are many ionic solids brittle?

    Svar

    A shifted lattice can align like charges, creating strong repulsion that splits the crystal.

  51. Spjald 51

    Spurning

    What molecular shapes arise from two electron domains with no lone pairs and from three domains with zero or one lone pair?

    Svar

    Two bonding domains give linear with a 180° angle. Three domains with no lone pairs give trigonal planar with 120° angles; replacing one bond with a lone pair gives bent with an angle slightly below 120°.

  52. Spjald 52

    Spurning

    Why are metals electrically conductive as solids?

    Svar

    Their delocalized electrons can move through the solid when an electric field is applied.

  53. Spjald 53

    Spurning

    How is formal charge calculated for an atom in a Lewis diagram?

    Svar

    Formal charge = valence electrons − nonbonding electrons − half the bonding electrons.

  54. Spjald 54

    Spurning

    Why can't electronegativity difference alone classify a bond as ionic or covalent?

    Svar

    Bonding lies on a continuum. A larger difference means more ionic character, but the element types and especially the compound's properties give the best classification.

  55. Spjald 55

    Spurning

    Which shapes and bond-angle trends arise as lone pairs replace bonds in four electron domains?

    Svar

    Four bonds give tetrahedral with ideal 109.5° angles. One lone pair gives trigonal pyramidal with smaller angles; two lone pairs give bent with typically smaller angles again because lone pairs repel more strongly than bonding pairs.

  56. Spjald 56

    Spurning

    What feature of a potential-energy curve represents bond dissociation energy?

    Svar

    The energy difference from the curve's minimum to the separated-atoms limit.

  57. Spjald 57

    Spurning

    When does an ionic compound conduct electricity?

    Svar

    When molten or dissolved so its ions can move; not as a rigid solid lattice.

  58. Spjald 58

    Spurning

    What is a substitutional alloy?

    Svar

    An alloy in which atoms of a similar size replace some host-metal atoms in the lattice.

  59. Spjald 59

    Spurning

    How do two, three, and four electron domains map to hybridization?

    Svar

    Two domains map to sp, three to sp², and four to sp³, with ideal angles of 180°, 120°, and 109.5°. Hybridization involving d orbitals is outside this deck’s scope.

  60. Spjald 60

    Spurning

    What usually makes one resonance contributor more favorable than another?

    Svar

    Smaller formal-charge magnitudes, appropriate negative charge on more electronegative atoms, and complete valence shells where applicable.

  61. Spjald 61

    Spurning

    How many sigma and pi bonds are in single, double, and triple bonds?

    Svar

    A single bond has one sigma bond; a double has one sigma and one pi bond; a triple has one sigma and two pi bonds. Head-on sigma overlap is stronger than side-by-side pi overlap.

  62. Spjald 62

    Spurning

    Why is a polar covalent bond polar?

    Svar

    Unequal electronegativity creates an uneven sharing of electron density and partial charges.

  63. Spjald 63

    Spurning

    Which molecular shapes arise as lone pairs replace bonds in five electron domains?

    Svar

    Five bonds give trigonal bipyramidal; four bonds and one lone pair give seesaw; three bonds and two lone pairs give T-shaped; two bonds and three lone pairs give linear.

  64. Spjald 64

    Spurning

    How do ionic charge and ionic radius affect attraction between ions?

    Svar

    Larger charge magnitudes and smaller ionic radii produce stronger attraction because the charge product increases and the ion centers are closer.

  65. Spjald 65

    Spurning

    Why do ionic solids often have high melting points?

    Svar

    Many strong Coulombic attractions throughout the lattice must be overcome to free the ions.

  66. Spjald 66

    Spurning

    What is an interstitial alloy?

    Svar

    A smaller atom occupies holes between host-metal atoms, often making lattice layers harder to slide.

  67. Spjald 67

    Spurning

    What shape has six bonding domains and no lone pairs on the central atom?

    Svar

    Octahedral.

  68. Spjald 68

    Spurning

    Which elements commonly form incomplete octets in stable Lewis diagrams?

    Svar

    Hydrogen forms a duet, and electron-deficient central atoms such as boron or beryllium can have fewer than eight electrons.

  69. Spjald 69

    Spurning

    How do bond order and atomic size affect covalent bond length and strength?

    Svar

    Within a comparable bond family, higher bond order gives shorter, stronger bonds. Larger bonded atoms generally give longer bonds, which are often weaker because their orbitals overlap less effectively.

  70. Spjald 70

    Spurning

    What bonding model best fits a sample that is malleable and conducts as a solid?

    Svar

    Metallic bonding with mobile, delocalized electrons and nondirectional attractions.

  71. Spjald 71

    Spurning

    What shape has six electron domains, five bonds, and one lone pair?

    Svar

    Square pyramidal.

  72. Spjald 72

    Spurning

    Which lattice should have stronger attractions: MgO or NaCl, assuming similar separations?

    Svar

    MgO, because the charge product for Mg²⁺ and O²⁻ is larger than for Na⁺ and Cl⁻.

  73. Spjald 73

    Spurning

    Why are pure metals often malleable?

    Svar

    Metal cores can shift while the mobile electron sea maintains nondirectional attraction instead of exposing fixed like-charge planes.

  74. Spjald 74

    Spurning

    What is the best Lewis structure for CO₂?

    Svar

    O=C=O, with two lone pairs on each oxygen and no formal charges.

  75. Spjald 75

    Spurning

    What shape has six electron domains, four bonds, and two opposite lone pairs?

    Svar

    Square planar.

  76. Spjald 76

    Spurning

    What limitation does an odd total number of valence electrons create for a Lewis diagram?

    Svar

    At least one electron must remain unpaired, so not every atom can have a complete paired-electron octet.

  77. Spjald 77

    Spurning

    What does a higher bond order do to a bond's potential-energy curve?

    Svar

    It generally places the minimum at a shorter internuclear distance and makes the well deeper, corresponding to a shorter bond and a larger bond-dissociation energy.

  78. Spjald 78

    Spurning

    When can a carbon–carbon double bond produce geometric isomers?

    Svar

    When each carbon has two different substituents. The pi bond restricts rotation, so distinct spatial arrangements can persist.

  79. Spjald 79

    Spurning

    When may a third-period central atom exceed an octet in a Lewis diagram?

    Svar

    When the valid electron count and lower formal charges favor an expanded valence shell, as in species such as SF₆.

  80. Spjald 80

    Spurning

    How do you decide whether a molecule with polar bonds is polar overall?

    Svar

    Add the bond-dipole vectors using the molecular shape; symmetry may cancel them, while an asymmetric arrangement leaves a net dipole.

  81. Spjald 81

    Spurning

    Which interparticle forces act between all atoms and molecules?

    Svar

    London dispersion forces, caused by temporary and induced dipoles.

  82. Spjald 82

    Spurning

    What four broad solid types does this deck compare?

    Svar

    Ionic, metallic, molecular, and covalent-network solids.

  83. Spjald 83

    Spurning

    How do gas particles differ from liquid particles?

    Svar

    Gas particles are much farther apart and move independently; liquid particles stay close but can move past one another.

  84. Spjald 84

    Spurning

    What relationship connects pressure, volume, amount, and temperature for an ideal gas?

    Svar

    PV = nRT, with absolute temperature in kelvins and units consistent with R.

  85. Spjald 85

    Spurning

    What does temperature measure in kinetic molecular theory?

    Svar

    The particles' average translational kinetic energy.

  86. Spjald 86

    Spurning

    What two ideal-gas assumptions fail most clearly for real gases?

    Svar

    Particles have nonzero volume and experience intermolecular attractions.

  87. Spjald 87

    Spurning

    How is molarity defined?

    Svar

    Moles of solute per liter of solution: M = n/V.

  88. Spjald 88

    Spurning

    What must a correct particulate diagram of NaCl(aq) show?

    Svar

    Separated Na⁺ and Cl⁻ ions in a 1:1 ratio, each surrounded by oriented water molecules.

  89. Spjald 89

    Spurning

    Which separation method removes an insoluble solid from a liquid?

    Svar

    Filtration: the solid stays as residue while the liquid passes as filtrate.

  90. Spjald 90

    Spurning

    What does “like dissolves like” mean at the particle level?

    Svar

    A solute tends to dissolve when new solute–solvent attractions can compete with the attractions disrupted in the pure substances.

  91. Spjald 91

    Spurning

    What happens when matter absorbs electromagnetic radiation?

    Svar

    Its particles move to an allowed higher-energy state when the photon energy matches the energy gap.

  92. Spjald 92

    Spurning

    Which equations connect photon energy, frequency, and wavelength?

    Svar

    E = hν and c = λν.

  93. Spjald 93

    Spurning

    What is the Beer–Lambert law?

    Svar

    A = εbc: absorbance equals molar absorptivity at the chosen wavelength times path length times concentration.

  94. Spjald 94

    Spurning

    What molecular features generally strengthen London dispersion forces?

    Svar

    More electrons and a more polarizable cloud strengthen temporary dipoles; greater contact area and accessible π-electron density can also strengthen the attraction.

  95. Spjald 95

    Spurning

    Why do molecular solids usually have low melting points and fail to conduct electricity?

    Svar

    Distinct molecules are held together by relatively weak intermolecular forces, while their valence electrons stay localized in bonds and lone pairs.

  96. Spjald 96

    Spurning

    How do particles move in a solid?

    Svar

    They vibrate about fixed positions and do not translate past one another.

  97. Spjald 97

    Spurning

    What graph shapes connect V or P with T(K) or n for an ideal gas?

    Svar

    All four are straight lines through the origin: V versus T(K) at fixed n and P; P versus T(K) at fixed n and V; V versus n at fixed P and T; and P versus n at fixed V and T.

  98. Spjald 98

    Spurning

    At the same temperature, which gas has the greater average molecular speed: He or Xe?

    Svar

    He. Both have the same average kinetic energy, but KE = ½mv² means the lower-mass particles move faster.

  99. Spjald 99

    Spurning

    Why do real gases deviate more at high pressure?

    Svar

    Particles are crowded, so their own volume is no longer negligible compared with the container volume.

  100. Spjald 100

    Spurning

    Which relationship describes dilution when solute amount is conserved?

    Svar

    M₁V₁ = M₂V₂.

  101. Spjald 101

    Spurning

    Why does an aqueous ionic solution conduct electricity?

    Svar

    Dissolved ions are mobile and carry charge through the solution.

  102. Spjald 102

    Spurning

    Which property lets simple distillation separate two liquids?

    Svar

    A sufficient difference in volatility or boiling point, so the vapor is enriched in the more volatile component.

  103. Spjald 103

    Spurning

    Why are many ionic compounds soluble in water but poorly soluble in a nonpolar solvent?

    Svar

    Water can form strong ion–dipole attractions that stabilize separated ions; a nonpolar solvent cannot provide comparable attractions.

  104. Spjald 104

    Spurning

    Which molecular transition is commonly associated with microwave absorption?

    Svar

    A transition between quantized rotational energy levels.

  105. Spjald 105

    Spurning

    What frequency corresponds to a 600. nm photon?

    Svar

    5.00 × 10^14 s^-1. Use ν = c/λ with 600. nm = 6.00 × 10^-7 m.

  106. Spjald 106

    Spurning

    What is the absorbance to two significant figures when ε = 2.0 × 10² L mol^-1 cm^-1, b = 1.00 cm, and c = 0.0020 M?

    Svar

    0.40. Use A = εbc.

  107. Spjald 107

    Spurning

    What conditions allow hydrogen bonding between two molecules?

    Svar

    One molecule must donate an H covalently bonded to N, O, or F, and the other must provide a lone pair on N, O, or F. A molecule can be a donor, an acceptor, or both.

  108. Spjald 108

    Spurning

    Why are covalent-network solids often very hard with high melting points?

    Svar

    A continuous network of strong covalent bonds must be disrupted to deform or melt the solid.

  109. Spjald 109

    Spurning

    Why do a substance's solid and liquid phases usually have similar molar volumes?

    Svar

    Their particles remain in close contact in both phases, even though liquid particles can move past one another.

  110. Spjald 110

    Spurning

    How is a gas mixture's total pressure related to its component pressures?

    Svar

    Ptotal = ΣPi; each partial pressure is the pressure that component would exert alone in the same volume and temperature.

  111. Spjald 111

    Spurning

    What microscopic events create gas pressure?

    Svar

    Gas particles collide with container walls and transfer momentum.

  112. Spjald 112

    Spurning

    Why do intermolecular attractions matter more for gases at low temperature?

    Svar

    Particles move more slowly, so attractions can alter their paths and promote condensation.

  113. Spjald 113

    Spurning

    What is the final concentration after 50.0 mL of 2.00 M solution is diluted to 200.0 mL?

    Svar

    0.500 M. Use M₂ = M₁V₁/V₂.

  114. Spjald 114

    Spurning

    What must a particulate representation of a solution communicate?

    Svar

    The relative concentrations of its components and the particle-level interactions among those components.

  115. Spjald 115

    Spurning

    What causes components to separate in chromatography?

    Svar

    They differ in attraction to the stationary phase and the mobile phase, so they travel at different rates.

  116. Spjald 116

    Spurning

    Why are many polar molecular solutes soluble in water?

    Svar

    Dipole attractions or hydrogen bonds with water can replace the solute–solute and water–water attractions disrupted during mixing.

  117. Spjald 117

    Spurning

    Why does an atom produce discrete spectral lines?

    Svar

    Its electrons can occupy only quantized energy levels, so only photons matching allowed energy differences are absorbed or emitted.

  118. Spjald 118

    Spurning

    How does photon energy change when frequency doubles?

    Svar

    It doubles because E = hν.

  119. Spjald 119

    Spurning

    Why is a calibration curve useful in spectrophotometry?

    Svar

    It relates measured absorbance to known concentrations, letting an unknown concentration be read by interpolation within the linear range.

  120. Spjald 120

    Spurning

    How does an ion–dipole attraction form, and how does it compare with dipole–dipole attraction?

    Svar

    An ion attracts the oppositely charged end of a polar molecule. Ion–dipole attractions tend to be stronger than dipole–dipole attractions.

  121. Spjald 121

    Spurning

    Which solid type is usually both conductive and malleable?

    Svar

    A metallic solid, because its delocalized electrons move and its nondirectional bonding tolerates layer shifts.

  122. Spjald 122

    Spurning

    How does a crystalline solid differ from an amorphous solid?

    Svar

    A crystalline solid has long-range repeating order; an amorphous solid lacks that long-range periodic arrangement.

  123. Spjald 123

    Spurning

    How is a gas component's partial pressure found from mole fraction?

    Svar

    Pi = XiPtotal.

  124. Spjald 124

    Spurning

    How does heating a fixed-volume gas affect its pressure in the ideal model?

    Svar

    Pressure rises because faster particles collide with the walls more forcefully and frequently.

  125. Spjald 125

    Spurning

    Why can attractions make a real gas's measured pressure lower than the ideal prediction?

    Svar

    Attractions pull approaching particles away from the walls, reducing momentum transfer during wall collisions.

  126. Spjald 126

    Spurning

    How many moles of ions result from complete dissolution of 0.20 mol CaCl₂?

    Svar

    0.60 mol ions: 0.20 mol Ca²⁺ plus 0.40 mol Cl⁻.

  127. Spjald 127

    Spurning

    How should water orient around Cl⁻ in a particle model?

    Svar

    Its partially positive hydrogen ends point toward Cl⁻.

  128. Spjald 128

    Spurning

    Can filtration separate dissolved components of a liquid solution?

    Svar

    No. Dissolved particles pass through the filter with the solvent; filtration only retains an insoluble solid.

  129. Spjald 129

    Spurning

    Why do nonpolar molecular solutes often dissolve in nonpolar solvents?

    Svar

    Both rely mainly on compatible London dispersion forces, so mixing can replace the attractions disrupted in the separate substances.

  130. Spjald 130

    Spurning

    What does a shorter absorbed wavelength imply about an energy transition?

    Svar

    A larger energy gap because E = hc/λ.

  131. Spjald 131

    Spurning

    What is the energy of a photon with frequency 5.0 × 10^14 s^-1?

    Svar

    3.3 × 10^-19 J. Multiply by Planck's constant: E = (6.626 × 10^-34 J·s)(5.0 × 10^14 s^-1).

  132. Spjald 132

    Spurning

    How does doubling cuvette path length affect absorbance in the linear Beer–Lambert range?

    Svar

    Absorbance doubles if concentration and molar absorptivity stay constant.

  133. Spjald 133

    Spurning

    How can noncovalent interactions affect a large biomolecule?

    Svar

    Attractions between molecules or between different regions of the same molecule help set its shape, which strongly affects its properties and function.

  134. Spjald 134

    Spurning

    Why does an ionic solid usually fail to conduct as a solid?

    Svar

    Its ions are fixed in lattice positions. The same substance conducts when molten or dissolved because the ions can then move.

  135. Spjald 135

    Spurning

    Why does a gas have no definite shape or volume?

    Svar

    Its widely spaced particles move constantly and experience minimal interparticle attraction, so they spread through the available container.

  136. Spjald 136

    Spurning

    What graph shapes show the inverse pressure–volume relationship for a fixed amount of ideal gas at constant temperature?

    Svar

    A plot of P against V is a decreasing curve, while P against 1/V is a straight line through the origin.

  137. Spjald 137

    Spurning

    At the same temperature, do different ideal gases have different average kinetic energies?

    Svar

    No. Average translational kinetic energy depends only on absolute temperature.

  138. Spjald 138

    Spurning

    Under which conditions is ideal-gas behavior most accurate?

    Svar

    Low pressure and high temperature, where particles are far apart and attractions matter least.

  139. Spjald 139

    Spurning

    What particle-level feature distinguishes a solution from a heterogeneous mixture?

    Svar

    A solution—whether solid, liquid, or gas—is uniform throughout; a heterogeneous mixture has regions or phases with different compositions.

  140. Spjald 140

    Spurning

    How should water orient around Na⁺ in a particulate model?

    Svar

    Its partially negative oxygen end points toward Na⁺.

  141. Spjald 141

    Spurning

    In paper chromatography, why does one solute spot travel farther than another?

    Svar

    It interacts more strongly with the mobile phase or more weakly with the stationary phase. With known phase polarities, that travel difference can reveal relative solute polarity.

  142. Spjald 142

    Spurning

    What energy competition helps explain whether an ionic solid dissolves?

    Svar

    The energy needed to separate lattice ions competes with the energy released when ion–solvent attractions form.

  143. Spjald 143

    Spurning

    Which molecular motions commonly absorb infrared radiation?

    Svar

    Bond vibrations whose changing dipole can interact with the radiation.

  144. Spjald 144

    Spurning

    Why must wavelength be converted to meters in c = λν when c is in m s^-1?

    Svar

    Consistent units are required so meters cancel correctly and frequency comes out in s^-1.

  145. Spjald 145

    Spurning

    How can fingerprints on a cuvette affect a visible-light absorbance reading?

    Svar

    They can absorb or scatter extra light, making measured absorbance too high and the inferred concentration too high.

  146. Spjald 146

    Spurning

    What causes and controls the strength of dipole–dipole attractions?

    Svar

    Opposite partial charges on neighboring polar molecules attract. Strength increases with larger molecular dipoles and depends on how favorably the dipoles are oriented.

  147. Spjald 147

    Spurning

    Why is graphite conductive and soft while diamond is insulating and hard?

    Svar

    Graphite has delocalized electrons within its sheets, so it conducts, and its layers can slide, so it is soft. Diamond has a rigid three-dimensional network of localized covalent bonds, making it hard and insulating.

  148. Spjald 148

    Spurning

    Why are gases much more compressible than liquids?

    Svar

    Gas particles have large empty spaces between them; liquid particles are already close together.

  149. Spjald 149

    Spurning

    What volume does 0.500 mol CO₂ occupy at 1.00 atm and 300. K if it behaves ideally?

    Svar

    12.3 L. Use V = nRT/P = (0.500 mol)(0.08206 L atm mol^-1 K^-1)(300. K)/(1.00 atm).

  150. Spjald 150

    Spurning

    Why does a lighter gas effuse faster than a heavier gas at the same temperature?

    Svar

    Its particles have a higher average speed because equal average kinetic energy is shared by less mass.

  151. Spjald 151

    Spurning

    How does finite particle volume affect a real gas at very high pressure?

    Svar

    The free volume available for particle motion is smaller than the container volume assumed by the ideal model.

  152. Spjald 152

    Spurning

    How should 250.0 mL of 0.100 M NaCl be prepared from solid NaCl?

    Svar

    Dissolve 0.0250 mol NaCl, or 1.46 g, then dilute to exactly 250.0 mL in a volumetric flask.

  153. Spjald 153

    Spurning

    What changes in a particle diagram when a solution is diluted without losing solute?

    Svar

    The solute-particle count stays constant while solvent volume and particle spacing increase.

  154. Spjald 154

    Spurning

    Why is fractional distillation better than simple distillation for liquids with close boiling points?

    Svar

    Repeated vaporization–condensation steps enrich the vapor in the more volatile component more effectively.

  155. Spjald 155

    Spurning

    Why are oil and water usually immiscible?

    Svar

    Water's strong hydrogen-bond network isn't replaced by equally strong water–oil attractions, so the substances separate into phases.

  156. Spjald 156

    Spurning

    Which molecular transition is commonly associated with ultraviolet or visible absorption?

    Svar

    A transition between electronic energy levels.

  157. Spjald 157

    Spurning

    Which photon carries more energy, blue light or red light?

    Svar

    Blue light, because it has shorter wavelength and higher frequency.

  158. Spjald 158

    Spurning

    Why is absorbance often measured at the wavelength of maximum absorbance in Beer–Lambert analysis?

    Svar

    It gives the largest concentration-sensitive signal, and the flat top near the maximum makes small wavelength-setting errors less influential.

  159. Spjald 159

    Spurning

    What creates a dipole–induced-dipole attraction, and what controls its strength?

    Svar

    A permanent dipole distorts a nearby nonpolar particle's electron cloud and creates an attractive temporary dipole. A larger permanent dipole and a more polarizable nonpolar partner make the attraction stronger.

  160. Spjald 160

    Spurning

    How do stronger intermolecular forces affect vapor pressure, boiling point, and melting point?

    Svar

    They lower vapor pressure and raise boiling point. Melting point often rises too, but the trend is less direct because melting rearranges rather than fully separates particles.

  161. Spjald 161

    Spurning

    How do particles behave in a liquid?

    Svar

    They stay in close contact while moving and colliding continuously. Temperature and interparticle attractions affect their arrangement and motion.

  162. Spjald 162

    Spurning

    Why must Celsius temperature be converted to kelvins in gas-law calculations?

    Svar

    Gas-law proportionalities require an absolute temperature scale whose zero corresponds to zero extrapolated thermal motion.

  163. Spjald 163

    Spurning

    How does raising temperature change a Maxwell–Boltzmann speed distribution?

    Svar

    The distribution broadens, its peak lowers and shifts right, and a larger fraction of particles have high speed.

  164. Spjald 164

    Spurning

    Why does the ideal-gas model treat collisions as elastic?

    Svar

    It assumes total kinetic energy is conserved in particle–particle and particle–wall collisions.

  165. Spjald 165

    Spurning

    How many moles of solute are in 75.0 mL of a 0.400 M solution?

    Svar

    0.0300 mol. Multiply 0.400 mol L^-1 by 0.0750 L.

  166. Spjald 166

    Spurning

    For equal solution volumes drawn at the same scale, what shows which solution is more concentrated?

    Svar

    The more concentrated diagram contains more solute particles in that equal volume.

  167. Spjald 167

    Spurning

    How do differences in intermolecular attractions let distillation separate a liquid solution?

    Svar

    They give the components different vapor pressures, so the vapor is enriched in the more volatile component.

  168. Spjald 168

    Spurning

    What comparison helps predict whether two liquids will be miscible?

    Svar

    Liquids with similar types and strengths of intermolecular attractions are more likely to mix uniformly.

  169. Spjald 169

    Spurning

    How can an absorption spectrum help identify a substance?

    Svar

    Its allowed energy gaps produce a characteristic pattern of absorbed wavelengths that can be compared with known spectra.

  170. Spjald 170

    Spurning

    How does absorbing or emitting a photon change an atom's or molecule's energy?

    Svar

    Absorption raises the species' energy by exactly the photon energy; emission lowers it by the same amount.

  171. Spjald 171

    Spurning

    What macroscopic evidence can support that a chemical reaction occurred?

    Svar

    Evidence can include gas formation, precipitate formation, a persistent color change, or an energy change, interpreted with particle-level changes.

  172. Spjald 172

    Spurning

    What does a net ionic equation include?

    Svar

    Only the dissolved or reacting species that undergo chemical change; spectator ions are omitted.

  173. Spjald 173

    Spurning

    What must a correct particulate reaction diagram conserve?

    Svar

    The number of atoms of every element and the total charge.

  174. Spjald 174

    Spurning

    What distinguishes a chemical change from a physical change?

    Svar

    A chemical change rearranges bonds into new substances; a physical change alters state or arrangement without changing chemical identity.

  175. Spjald 175

    Spurning

    What does a balanced equation's coefficient ratio provide?

    Svar

    The mole ratio among reacting and produced species.

  176. Spjald 176

    Spurning

    What is the equivalence point of a titration?

    Svar

    The point where titrant and analyte have reacted in the stoichiometric ratio given by the balanced equation.

  177. Spjald 177

    Spurning

    What defines a precipitation reaction?

    Svar

    Aqueous ions combine to form a sparingly soluble solid.

  178. Spjald 178

    Spurning

    What happens in a Brønsted–Lowry acid–base reaction?

    Svar

    A proton transfers from the acid (donor) to the base (acceptor). In aqueous solution, H₂O can play either role.

  179. Spjald 179

    Spurning

    What does oxidation mean in a redox reaction?

    Svar

    Loss of electrons and an increase in oxidation number.

  180. Spjald 180

    Spurning

    What particle-level change confirms that a process is chemical?

    Svar

    Atoms rearrange into new combinations, producing substances with different compositions.

  181. Spjald 181

    Spurning

    Which ions are spectators when AgNO₃(aq) reacts with NaCl(aq)?

    Svar

    Na⁺ and NO₃⁻. The net ionic reaction is Ag⁺(aq) + Cl⁻(aq) → AgCl(s).

  182. Spjald 182

    Spurning

    How does a particulate diagram reveal the limiting reactant?

    Svar

    After forming the maximum product allowed by the ratio, none of the limiting reactant remains while excess reactant particles do.

  183. Spjald 183

    Spurning

    Is melting ice a chemical or physical change?

    Svar

    A physical change. H₂O molecules remain H₂O while their arrangement and motion change.

  184. Spjald 184

    Spurning

    How is the limiting reactant identified from given amounts?

    Svar

    Convert each reactant to the same product amount using the balanced equation; the smaller product amount identifies the limiting reactant.

  185. Spjald 185

    Spurning

    How does an endpoint differ from an equivalence point?

    Svar

    The endpoint is an observed signal such as indicator color change; the equivalence point is the exact stoichiometric condition.

  186. Spjald 186

    Spurning

    How is complete combustion of a hydrocarbon in excess oxygen classified, and what products form?

    Svar

    It is a redox combustion reaction that forms CO₂ and H₂O.

  187. Spjald 187

    Spurning

    What are the conjugate acid and conjugate base in NH₃ + H₂O ⇌ NH₄⁺ + OH⁻?

    Svar

    NH₄⁺ is the conjugate acid of NH₃, and OH⁻ is the conjugate base of H₂O.

  188. Spjald 188

    Spurning

    What does reduction mean in a redox reaction?

    Svar

    Gain of electrons and a decrease in oxidation number.

  189. Spjald 189

    Spurning

    Which common changes are physical rather than chemical?

    Svar

    Phase changes and the formation or separation of mixtures are physical when each substance keeps its composition.

  190. Spjald 190

    Spurning

    How are strong soluble electrolytes written in a complete ionic equation?

    Svar

    As separated aqueous ions; solids, liquids, gases, and weak electrolytes stay intact.

  191. Spjald 191

    Spurning

    A diagram starts with six A particles and four B₂ particles for 2A + B₂ → 2AB; what remains after completion?

    Svar

    One B₂ remains. Six A consume three B₂ and form six AB.

  192. Spjald 192

    Spurning

    Why is dissolving NaCl in water normally classified as a physical change?

    Svar

    Na⁺ and Cl⁻ separate and become hydrated, but retain their chemical identities. Removing the water recovers NaCl; the shift from ion–ion to ion–dipole attractions does not by itself form a new substance.

  193. Spjald 193

    Spurning

    What mass of AgCl can form from 25.0 mL of 0.200 M AgNO₃ mixed with excess Cl⁻?

    Svar

    0.717 g AgCl. The 1:1 reaction gives 0.00500 mol AgCl; multiply by 143.32 g mol^-1.

  194. Spjald 194

    Spurning

    What calculation finds unknown analyte moles at equivalence?

    Svar

    Use titrant moles, n = MV, then apply the balanced-reaction mole ratio.

  195. Spjald 195

    Spurning

    Which feature identifies an acid–base, redox, or precipitation reaction?

    Svar

    Acid–base reactions transfer protons, redox reactions change oxidation numbers through electron transfer, and precipitation reactions form a sparingly soluble solid.

  196. Spjald 196

    Spurning

    What is the net ionic equation for strong acid–strong base neutralization?

    Svar

    H⁺(aq) + OH⁻(aq) → H₂O(l).

  197. Spjald 197

    Spurning

    What is the oxidation number of sulfur in SO₄²⁻?

    Svar

    +6. Four oxygens contribute -8 total, so sulfur must be +6 to give -2 overall.

  198. Spjald 198

    Spurning

    Why can gas bubbles alone be ambiguous evidence of reaction?

    Svar

    Bubbles may also come from boiling or dissolved gas escaping, so the context and particle identities must support a chemical change.

  199. Spjald 199

    Spurning

    How is melting ice represented as a balanced physical-change equation?

    Svar

    H₂O(s) → H₂O(l). The formula and atom count stay the same because only the physical state changes.

  200. Spjald 200

    Spurning

    What does a particle diagram show when no reaction occurs after two aqueous ionic solutions mix?

    Svar

    All ions remain separated and solvated, with no new bonded particles, precipitate, or gas.

  201. Spjald 201

    Spurning

    Why is rusting iron a chemical change?

    Svar

    Iron atoms form new iron-oxide substances through electron transfer and new bonding.

  202. Spjald 202

    Spurning

    For 2H₂O₂(aq) → 2H₂O(l) + O₂(g), what volume of O₂ forms from 0.100 mol H₂O₂ at 298 K and 1.00 atm?

    Svar

    1.22 L O₂. The mole ratio gives 0.0500 mol O₂, then V = nRT/P.

  203. Spjald 203

    Spurning

    A 25.0 mL monoprotic acid sample requires 20.0 mL of 0.150 M NaOH; what is the acid concentration?

    Svar

    0.120 M. At 1:1 equivalence, moles acid = 0.0200 L × 0.150 M, then divide by 0.0250 L.

  204. Spjald 204

    Spurning

    Which salts does the minimum solubility rule in this deck treat as soluble?

    Svar

    All salts containing Na⁺, K⁺, NH₄⁺, or NO₃⁻ are treated as soluble in water.

  205. Spjald 205

    Spurning

    How are the strengths of a conjugate acid and its conjugate base related?

    Svar

    A stronger acid has a weaker conjugate base, and a stronger base has a weaker conjugate acid.

  206. Spjald 206

    Spurning

    How are oxidation and reduction half-reactions combined into one balanced equation?

    Svar

    Multiply them so electrons lost equal electrons gained, add the half-reactions, then cancel electrons and any identical species on both sides.

  207. Spjald 207

    Spurning

    How do molecular, complete ionic, and net ionic equations differ?

    Svar

    Molecular equations keep compounds intact, complete ionic equations split strong soluble electrolytes, and net ionic equations remove spectators. All three conserve atoms and charge.

  208. Spjald 208

    Spurning

    How should coefficients change particle counts in a reaction diagram?

    Svar

    They set whole-particle ratios while preserving each particle's chemical formula.

  209. Spjald 209

    Spurning

    Is separating a mixture by distillation a chemical or physical change?

    Svar

    A physical change. Components change phase and location but keep their chemical identities.

  210. Spjald 210

    Spurning

    What equation results from Cu → Cu²⁺ + 2e⁻ and Ag⁺ + e⁻ → Ag?

    Svar

    Cu + 2Ag⁺ → Cu²⁺ + 2Ag. Multiply the silver half-reaction by 2 and cancel 2e⁻; both atom counts and net charge then match.

  211. Spjald 211

    Spurning

    How is average reaction rate found from a reactant concentration?

    Svar

    Use the negative concentration change divided by elapsed time, adjusted by its stoichiometric coefficient when comparing species rates.

  212. Spjald 212

    Spurning

    What does a rate law express?

    Svar

    It shows how the measured rate depends on reactant concentrations. In rate = k[A]^m[B]^n, m and n are the orders in A and B, and m + n is the overall order.

  213. Spjald 213

    Spurning

    A plot of ln[A] versus time is linear; what is the order in A and its integrated rate law?

    Svar

    First order: ln[A]t = ln[A]0 − kt, so the plot's slope is −k.

  214. Spjald 214

    Spurning

    What is an elementary reaction?

    Svar

    A single step in a mechanism whose rate law follows directly from its reactant molecularity.

  215. Spjald 215

    Spurning

    What two collision conditions are needed for reaction?

    Svar

    Sufficient collision energy and a productive molecular orientation.

  216. Spjald 216

    Spurning

    What does activation energy represent on a reaction-energy profile?

    Svar

    The energy difference from the reactants to the transition state. The reaction coordinate tracks the step's structural progress, not elapsed time.

  217. Spjald 217

    Spurning

    What must the elementary steps of a valid mechanism do when added?

    Svar

    Cancel intermediates and reproduce the overall balanced reaction.

  218. Spjald 218

    Spurning

    How is a proposed mechanism tested against kinetics?

    Svar

    Its derived rate law must agree with the experimentally measured rate law.

  219. Spjald 219

    Spurning

    What does a pre-equilibrium approximation assume?

    Svar

    A fast reversible step reaches equilibrium before a later slow step consumes its intermediate.

  220. Spjald 220

    Spurning

    What does each peak on a multistep energy profile represent?

    Svar

    A transition state for one elementary step.

  221. Spjald 221

    Spurning

    How does a catalyst increase reaction rate?

    Svar

    It provides an alternate mechanism with a lower activation-energy pathway.

  222. Spjald 222

    Spurning

    Why does crushing a solid reactant usually increase its reaction rate?

    Svar

    Crushing increases exposed surface area, so more reactant particles can collide with the other reactant each second.

  223. Spjald 223

    Spurning

    How is reaction order found from initial-rate data?

    Svar

    Compare trials where one reactant concentration changes while the others stay constant, then match the rate factor to the concentration factor.

  224. Spjald 224

    Spurning

    A plot of [A] versus time is linear; what is the order in A and its integrated rate law?

    Svar

    Zero order: [A]t = [A]0 − kt, so the plot's slope is −k.

  225. Spjald 225

    Spurning

    What is the rate law for the elementary step 2A + B → products?

    Svar

    rate = k[A]²[B]. This inference is valid because the step is elementary.

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  226. Spjald 226

    Spurning

    How does raising temperature change a Maxwell–Boltzmann energy distribution and reaction rate?

    Svar

    The distribution shifts and broadens toward higher energies, so a larger fraction of collisions exceeds the activation-energy threshold and can react.

  227. Spjald 227

    Spurning

    How is ΔH read from a reaction-energy profile?

    Svar

    ΔH = energy of products − energy of reactants.

  228. Spjald 228

    Spurning

    What is a reaction intermediate?

    Svar

    A species formed in one mechanism step and consumed in a later step, so it cancels from the overall equation.

  229. Spjald 229

    Spurning

    Why can't overall reaction coefficients usually supply rate-law exponents?

    Svar

    The overall equation hides the mechanism; exponents come from experiment unless the reaction is a stated elementary step.

  230. Spjald 230

    Spurning

    How does pre-equilibrium remove an intermediate from a rate law?

    Svar

    Use the fast-step equilibrium relation to express the intermediate concentration in terms of stable reactants.

  231. Spjald 231

    Spurning

    What does each valley between peaks represent on a multistep profile?

    Svar

    A reaction intermediate.

  232. Spjald 232

    Spurning

    Does a catalyst change ΔH or the equilibrium constant?

    Svar

    No. It changes the pathway and rates, not reactant/product energies or the equilibrium composition.

  233. Spjald 233

    Spurning

    For 2A → B, how are disappearance of A and appearance of B related?

    Svar

    Reaction rate = -(1/2)Δ[A]/Δt = Δ[B]/Δt.

  234. Spjald 234

    Spurning

    How do the units of k depend on a rate law's overall order?

    Svar

    They must make the rate unit M s^-1: zero order uses M s^-1, first order s^-1, and second order M^-1 s^-1.

  235. Spjald 235

    Spurning

    A plot of 1/[A] versus time is linear; what is the order in A and its integrated rate law?

    Svar

    Second order: 1/[A]t = 1/[A]0 + kt, so the plot's slope is +k.

  236. Spjald 236

    Spurning

    What is molecularity?

    Svar

    The number of reacting particles in an elementary step, such as unimolecular or bimolecular.

  237. Spjald 237

    Spurning

    How does raising temperature affect k in the qualitative Arrhenius model?

    Svar

    k increases, often sharply, because a larger fraction of collisions can reach the transition state. Arrhenius-equation calculations are outside this deck’s scope.

  238. Spjald 238

    Spurning

    A reactant falls from 0.80 M to 0.50 M in 30. s; what is its average disappearance rate to two significant figures?

    Svar

    0.010 M s^-1. Use -(0.50 − 0.80) M ÷ 30. s.

  239. Spjald 239

    Spurning

    How does a catalyst differ from an intermediate in a mechanism?

    Svar

    A catalyst is consumed early and regenerated later; an intermediate is formed early and consumed later.

  240. Spjald 240

    Spurning

    For 2NO₂ → NO₃ + NO (slow), followed by NO₃ + CO → NO₂ + CO₂ (fast), what rate law is predicted?

    Svar

    rate = k[NO₂]². The first step is elementary and rate-limiting, so its molecularity sets the observed rate law.

  241. Spjald 241

    Spurning

    On a multistep reaction-energy profile, which feature often identifies the rate-determining step?

    Svar

    The step with the largest activation barrier measured from its preceding valley to its peak.

  242. Spjald 242

    Spurning

    If changing [B] leaves rate unchanged, what is the order in B?

    Svar

    Zero order, so [B]^0 = 1 in the measured rate law.

  243. Spjald 243

    Spurning

    What mechanism changes can binding, acid–base, or surface catalysis introduce?

    Svar

    They can orient reactants, lower activation barriers, or create new bound, protonated, or deprotonated intermediates and elementary steps; the catalyst is regenerated.

  244. Spjald 244

    Spurning

    What is special about a first-order reaction's half-life?

    Svar

    It is constant and independent of starting concentration: t1/2 = ln 2/k. Radioactive decay is a common first-order example.

  245. Spjald 245

    Spurning

    Why is a termolecular elementary collision uncommon?

    Svar

    Three particles must collide simultaneously with suitable energy and orientation, which is much less probable than one- or two-particle events.

  246. Spjald 246

    Spurning

    On a reaction-energy profile, how are reverse activation energy, forward activation energy, and ΔH related?

    Svar

    Ea,reverse = Ea,forward − ΔH. The reverse barrier is measured from products to the same transition state.

  247. Spjald 247

    Spurning

    Why can correct orientation matter even above the activation energy?

    Svar

    The colliding reactive sites must align so old bonds can break and new bonds can form along the reaction pathway.

  248. Spjald 248

    Spurning

    How does detecting a proposed reaction intermediate affect a mechanism claim?

    Svar

    It supports a mechanism that contains that intermediate, but it doesn't prove that mechanism is unique.

  249. Spjald 249

    Spurning

    For 2NO ⇌ N₂O₂ (fast equilibrium), followed by N₂O₂ + O₂ → 2NO₂ (slow), what observed rate law results?

    Svar

    rate = kobs[NO]²[O₂]. Start with rate = k₂[N₂O₂][O₂], use [N₂O₂] = K[NO]² from the fast equilibrium, then substitute.

  250. Spjald 250

    Spurning

    What does the highest point of a one-step energy profile represent?

    Svar

    The transition state, an unstable arrangement at the top of the activation barrier.

  251. Spjald 251

    Spurning

    What sign does q have for an endothermic system?

    Svar

    Positive, because the system absorbs heat from the surroundings.

  252. Spjald 252

    Spurning

    How does an exothermic reaction appear on an enthalpy diagram?

    Svar

    Products lie below reactants, so ΔH is negative.

  253. Spjald 253

    Spurning

    What condition defines thermal equilibrium?

    Svar

    Objects in contact have the same temperature, so there is no net heat transfer.

  254. Spjald 254

    Spurning

    What equations relate heat capacity and temperature change to heat transfer?

    Svar

    Use q = mcΔT with specific heat capacity, or q = nCₘΔT with molar heat capacity.

  255. Spjald 255

    Spurning

    Why is temperature constant during a phase-change plateau?

    Svar

    Added or removed energy changes interparticle potential energy instead of average kinetic energy.

  256. Spjald 256

    Spurning

    What does ΔHrxn describe?

    Svar

    The heat absorbed or released at constant pressure for the reaction exactly as written under the stated conditions.

  257. Spjald 257

    Spurning

    How is reaction enthalpy estimated from average bond enthalpies?

    Svar

    ΔHrxn ≈ Σ(bonds broken) − Σ(bonds formed).

  258. Spjald 258

    Spurning

    What is the standard enthalpy of formation of an element in its standard state?

    Svar

    Zero by definition.

  259. Spjald 259

    Spurning

    In a Hess’s law calculation, how should a step change when the target needs twice its reverse?

    Svar

    Reverse the equation, double every coefficient, and multiply its ΔH by -2.

  260. Spjald 260

    Spurning

    How can energy cross a system boundary during a process?

    Svar

    As heat or work. Heat transferred to or work done on the system increases its energy; heat transferred from or work done by the system decreases it.

  261. Spjald 261

    Spurning

    How does an endothermic reaction appear on an enthalpy diagram?

    Svar

    Products lie above reactants, so ΔH is positive.

  262. Spjald 262

    Spurning

    How are heat gained by a system and heat lost by its surroundings related in an isolated setup?

    Svar

    qsystem = -qsurroundings.

  263. Spjald 263

    Spurning

    In coffee-cup calorimetry, how is reaction heat related to solution heat?

    Svar

    qrxn = -qsolution when calorimeter heat is negligible and pressure is constant.

  264. Spjald 264

    Spurning

    What heat is required to melt n moles at the melting point?

    Svar

    q = nΔHfus.

  265. Spjald 265

    Spurning

    How does reversing a reaction change ΔH?

    Svar

    It reverses the sign of ΔH.

  266. Spjald 266

    Spurning

    Why is breaking a bond endothermic?

    Svar

    Energy must be supplied to separate atoms against their bonding attraction.

  267. Spjald 267

    Spurning

    How is ΔH°rxn calculated from standard enthalpies of formation?

    Svar

    ΣνΔHf°(products) − ΣνΔHf°(reactants).

  268. Spjald 268

    Spurning

    How does multiplying an equation by 3 affect its ΔH?

    Svar

    Multiply ΔH by 3 because enthalpy change scales with reaction amount.

  269. Spjald 269

    Spurning

    Why can an exothermic dissolution warm the solution?

    Svar

    The solution warms because forming solute–solvent attractions releases more energy than is absorbed in separating the original particles. The net potential-energy decrease raises particle kinetic energy and temperature.

  270. Spjald 270

    Spurning

    Does an energy diagram's activation barrier determine ΔH?

    Svar

    No. ΔH depends on reactant and product energy levels, while the barrier controls kinetics.

  271. Spjald 271

    Spurning

    Why does heat flow from a warmer object to a cooler object?

    Svar

    Energy transfers through collisions until their average kinetic energies, and therefore temperatures, equalize.

  272. Spjald 272

    Spurning

    How much heat warms 100.0 g of water by 5.0°C?

    Svar

    2.1 kJ. Use q = (100.0 g)(4.184 J g^-1 °C^-1)(5.0°C).

  273. Spjald 273

    Spurning

    How are the molar enthalpies of a phase change and its reverse related?

    Svar

    They have equal magnitudes and opposite signs, such as ΔHcond = -ΔHvap and ΔHfreeze = -ΔHfus.

  274. Spjald 274

    Spurning

    How does doubling every coefficient in a thermochemical equation affect ΔH?

    Svar

    It doubles ΔH.

  275. Spjald 275

    Spurning

    Why is forming a bond exothermic?

    Svar

    Atoms move to a lower-potential-energy bonded arrangement and release energy.

  276. Spjald 276

    Spurning

    What formation equation defines ΔHf° for CO₂(g)?

    Svar

    C(s, graphite) + O₂(g) → CO₂(g), forming exactly one mole from elements in standard states.

  277. Spjald 277

    Spurning

    What should happen to intermediate species when equations in a Hess’s law calculation are added?

    Svar

    They cancel, leaving the target overall reaction.

  278. Spjald 278

    Spurning

    If the surroundings warm during a process, what is the likely sign of qsystem?

    Svar

    Negative; the system likely released heat to the surroundings.

  279. Spjald 279

    Spurning

    For a profile with reactants at 40 kJ and products at 10 kJ, what is ΔH?

    Svar

    -30 kJ for the reaction as drawn.

  280. Spjald 280

    Spurning

    Assuming no phase change, what determines the final temperature when two substances exchange heat in an insulated container?

    Svar

    Energy conservation: q_warm + q_cool = 0. Use each substance's mass, heat capacity, and initial temperature to solve for the common final temperature.

  281. Spjald 281

    Spurning

    How would heat loss to the room affect an exothermic calorimetry result?

    Svar

    The observed temperature rise is too small, so the calculated magnitude of released heat is too low.

  282. Spjald 282

    Spurning

    What heat expression covers warming a liquid without a phase change?

    Svar

    q = mcΔT, not nΔHphase.

  283. Spjald 283

    Spurning

    If forming 1 mol of product has ΔH = -50 kJ mol^-1, what is q when 2 mol forms?

    Svar

    -100 kJ. Use q = nΔH = (2 mol)(-50 kJ mol^-1).

  284. Spjald 284

    Spurning

    Breaking reactant bonds requires 500 kJ, and forming product bonds releases 650 kJ; what is the estimated ΔH?

    Svar

    -150 kJ, from 500 − 650.

  285. Spjald 285

    Spurning

    For CO(g) + ½O₂(g) → CO₂(g), what is ΔH°rxn if ΔHf°[CO] = -110.5 and ΔHf°[CO₂] = -393.5 kJ mol^-1?

    Svar

    -283.0 kJ. Use -393.5 - [-110.5 + ½(0)], since ΔHf°[O₂(g)] = 0.

  286. Spjald 286

    Spurning

    In a Hess’s law calculation, two valid steps have ΔH values +25 kJ and -60 kJ; what is the combined ΔH?

    Svar

    -35 kJ, provided the equations add to the target reaction.

  287. Spjald 287

    Spurning

    Why is “bonds breaking releases energy” incorrect?

    Svar

    Bond breaking absorbs energy; the overall reaction releases energy only when forming new bonds releases more than breaking old bonds requires.

  288. Spjald 288

    Spurning

    How would melting appear on an energy diagram?

    Svar

    The liquid lies above the solid, so ΔHfus is positive; the diagram represents a physical, endothermic change.

  289. Spjald 289

    Spurning

    Can two objects at the same temperature exchange energy microscopically?

    Svar

    Yes, but their energy transfers balance, so there is no net heat flow.

  290. Spjald 290

    Spurning

    Why must the calorimeter's heat capacity be included when it isn't negligible?

    Svar

    The apparatus can absorb or release heat, so include q_cal = C_calΔT in the energy balance: q_process + q_solution + q_cal = 0.

  291. Spjald 291

    Spurning

    What makes chemical equilibrium dynamic?

    Svar

    Forward and reverse reactions continue at equal rates even though macroscopic concentrations stay constant.

  292. Spjald 292

    Spurning

    For aA + bB ⇌ cC, what is the concentration-form expression for Q?

    Svar

    Q = [C]^c / ([A]^a[B]^b), using current rather than necessarily equilibrium concentrations.

  293. Spjald 293

    Spurning

    What does K much greater than 1 indicate?

    Svar

    Products predominate at equilibrium, though K says nothing about reaction speed.

  294. Spjald 294

    Spurning

    How does reversing a reaction change its equilibrium constant?

    Svar

    K becomes 1/K.

  295. Spjald 295

    Spurning

    Can a reversible system reach equilibrium when it starts with only products?

    Svar

    Yes, if the reverse reaction is possible. The equilibrium composition depends on temperature, initial amounts, and volume or pressure.

  296. Spjald 296

    Spurning

    How do Q and K predict reaction direction?

    Svar

    Q < K shifts forward, Q > K shifts reverse, and Q = K means equilibrium.

  297. Spjald 297

    Spurning

    Which species are omitted from a heterogeneous equilibrium expression?

    Svar

    Pure solids and pure liquids because their activities are effectively constant.

  298. Spjald 298

    Spurning

    How does increasing a dissolved reactant's concentration or a gaseous reactant's partial pressure affect equilibrium at constant temperature when other Q terms are initially unchanged?

    Svar

    It lowers Q relative to K, so the system shifts toward products until Q = K again. Changing the amount of a pure solid or liquid omitted from Q does not cause this shift while that pure phase remains present.

  299. Spjald 299

    Spurning

    What does a flat concentration-time graph mean at equilibrium?

    Svar

    Each concentration is constant, not necessarily equal to the others.

  300. Spjald 300

    Spurning

    For A ⇌ B in one fixed volume, a particulate model shows 16 A and 0 B initially, then 4 A and 12 B at equilibrium. What changed, what predominates, and what is Kc?

    Svar

    The net change was forward: 12 A particles became 12 B particles. B predominates at equilibrium, and Kc = [B]/[A] = 12/4 = 3.0 because both counts come from the same fixed volume.

  301. Spjald 301

    Spurning

    What can Ksp tell you about a salt's solubility, and when can two Ksp values be compared directly?

    Svar

    Ksp > 1 indicates a soluble salt. For salts with the same dissolution stoichiometry, a larger Ksp generally means greater molar solubility; across different stoichiometries, calculate molar solubility before comparing.

  302. Spjald 302

    Spurning

    What is the common-ion effect on solubility?

    Svar

    Adding an ion already in the dissolution equilibrium usually decreases the solid's molar solubility.

  303. Spjald 303

    Spurning

    How does uniform dilution shift an aqueous equilibrium based on the stoichiometric powers in Q?

    Svar

    It shifts toward the side with the larger sum of stoichiometric coefficients for dissolved species included in Q. If the sums are equal, dilution causes no shift by this effect; pure solids and liquids remain omitted.

  304. Spjald 304

    Spurning

    What happens if a reversible reaction starts with reactants only?

    Svar

    The forward rate is initially largest; products form, the reverse rate grows, and the rates eventually become equal.

  305. Spjald 305

    Spurning

    What is the purpose of an ICE table?

    Svar

    To organize initial, change, and equilibrium concentrations using reaction stoichiometry.

  306. Spjald 306

    Spurning

    Can a reaction with a very large K be slow?

    Svar

    Yes. K describes thermodynamic equilibrium position, while rate depends on kinetics and activation energy.

  307. Spjald 307

    Spurning

    What happens to Q immediately after product concentration increases?

    Svar

    Q increases; if it rises above K, the reaction shifts toward reactants.

  308. Spjald 308

    Spurning

    How does multiplying every reaction coefficient by 2 affect K?

    Svar

    The new equilibrium constant is K².

  309. Spjald 309

    Spurning

    For A ⇌ B, Kc = 4.0 and initially [A] = 1.0 M and [B] = 0, what are the equilibrium concentrations?

    Svar

    [A] = 0.20 M and [B] = 0.80 M. Let x form: Kc = x/(1.0 − x) = 4.0, so x = 0.80 M.

  310. Spjald 310

    Spurning

    What macroscopic properties stay constant at equilibrium?

    Svar

    Properties such as concentration, color, and pressure remain constant when external conditions are fixed.

  311. Spjald 311

    Spurning

    How does decreasing volume shift a gaseous equilibrium?

    Svar

    Toward the side with fewer moles of gas, if the two sides have different gaseous mole counts.

  312. Spjald 312

    Spurning

    For N₂ + 3H₂ ⇌ 2NH₃, what is Kc?

    Svar

    Kc = [NH₃]² / ([N₂][H₂]³).

  313. Spjald 313

    Spurning

    For CaF₂(s) ⇌ Ca²⁺ + 2F⁻, how is Ksp written in terms of molar solubility s in pure water?

    Svar

    Ksp = s(2s)² = 4s³ because [Ca²⁺] = s and [F⁻] = 2s.

  314. Spjald 314

    Spurning

    What does K much less than 1 indicate?

    Svar

    Reactants predominate at equilibrium.

  315. Spjald 315

    Spurning

    How does decreasing a dissolved product's concentration or a gaseous product's partial pressure affect equilibrium when other Q terms are initially unchanged?

    Svar

    It lowers Q and drives a net forward reaction until equilibrium returns. Changing the amount of a pure solid or liquid omitted from Q does not cause this shift while that phase remains.

  316. Spjald 316

    Spurning

    Does equilibrium mean the reaction has stopped?

    Svar

    No. Both directions continue, but equal rates produce no net macroscopic change.

  317. Spjald 317

    Spurning

    Why does adding NaF reduce CaF₂ solubility?

    Svar

    The added F⁻ raises Qsp, shifting the dissolution equilibrium toward solid CaF₂.

  318. Spjald 318

    Spurning

    For N₂ + 3H₂ ⇌ 2NH₃, what is Kp when P_N₂ = 0.50 atm, P_H₂ = 1.50 atm, and P_NH₃ = 0.25 atm?

    Svar

    0.037. Use Kp = (P_NH₃)²/[(P_N₂)(P_H₂)³] = (0.25)²/[(0.50)(1.50)³]. Use equilibrium partial pressures directly; Kc↔Kp conversion isn't assessed.

  319. Spjald 319

    Spurning

    What happens to Q when a gaseous equilibrium mixture is compressed at constant temperature if products have fewer gas moles?

    Svar

    Q falls relative to K, so the reaction shifts toward products.

  320. Spjald 320

    Spurning

    How do K and Q transform when a reaction is reversed, its coefficients are multiplied, or reactions are added?

    Svar

    They follow the same algebra: reversing takes the reciprocal, multiplying every coefficient by c raises the value to the power c, and adding reactions multiplies their K or Q values.

  321. Spjald 321

    Spurning

    When is the small-x approximation acceptable?

    Svar

    When x is small relative to the initial concentration and the final result confirms the neglected change is suitably small.

  322. Spjald 322

    Spurning

    What graph feature shows a disturbance followed by re-equilibration?

    Svar

    A sudden or gradual concentration change followed by new constant plateaus while rates return to equality.

  323. Spjald 323

    Spurning

    If Q = 0.20 and K = 5.0, which direction is favored next?

    Svar

    Forward, because Q < K.

  324. Spjald 324

    Spurning

    At equilibrium, are reactant and product concentrations equal?

    Svar

    Not necessarily. They are constant, while forward and reverse rates are equal.

  325. Spjald 325

    Spurning

    CaF₂ has Ksp = 3.2 × 10^-11 in pure water; what is its molar solubility?

    Svar

    2.0 × 10^-4 M. If the molar solubility is s, then [Ca²⁺] = s, [F⁻] = 2s, and Ksp = 4s³.

  326. Spjald 326

    Spurning

    For N₂ + 3H₂ ⇌ 2NH₃, how is Qp written?

    Svar

    Qp = (P_NH₃)²/[(P_N₂)(P_H₂)³], using the current partial pressures rather than necessarily equilibrium values.

  327. Spjald 327

    Spurning

    How does heating shift an endothermic forward reaction?

    Svar

    Toward products, and K increases because temperature changes the equilibrium constant.

  328. Spjald 328

    Spurning

    Why do both forward and reverse rates change as equilibrium is approached?

    Svar

    As reactant and product concentrations change, the collision frequencies for the two directions change until their rates match.

  329. Spjald 329

    Spurning

    CaF₂ has Ksp = 3.2 × 10^-11. What is its molar solubility in 0.10 M NaF?

    Svar

    About 3.2 × 10^-9 M. With [F⁻] ≈ 0.10 M, Ksp = [Ca²⁺][F⁻]² gives s = (3.2 × 10^-11)/(0.10)². The common ion lowers solubility but does not change Ksp at constant temperature.

  330. Spjald 330

    Spurning

    What concentration data must be used to calculate Kc?

    Svar

    Equilibrium concentrations, each raised to its stoichiometric coefficient and excluding pure solids and liquids.

  331. Spjald 331

    Spurning

    What is a Brønsted–Lowry acid?

    Svar

    A proton donor.

  332. Spjald 332

    Spurning

    How is pH defined?

    Svar

    pH = -log[H₃O⁺].

  333. Spjald 333

    Spurning

    What is Ka for HA + H₂O ⇌ H₃O⁺ + A⁻?

    Svar

    Ka = [H₃O⁺][A⁻]/[HA].

  334. Spjald 334

    Spurning

    How does stabilizing a base affect its basicity and the strength of its conjugate acid?

    Svar

    It makes the base weaker and its conjugate acid stronger. A more stable base is less willing to accept H⁺.

  335. Spjald 335

    Spurning

    What is a Brønsted–Lowry base?

    Svar

    A proton acceptor.

  336. Spjald 336

    Spurning

    At 25°C, what are Kw and the relationship between pH and pOH?

    Svar

    Kw = [H₃O⁺][OH⁻] = 1.0 × 10^-14. Taking negative logarithms gives pH + pOH = 14.00.

  337. Spjald 337

    Spurning

    What is Kb for B + H₂O ⇌ BH⁺ + OH⁻?

    Svar

    Kb = [BH⁺][OH⁻]/[B].

  338. Spjald 338

    Spurning

    Why can lowering pH increase the solubility of a salt containing a basic anion?

    Svar

    H₃O⁺ consumes the anion, pulling the dissolution equilibrium toward more dissolved ions.

  339. Spjald 339

    Spurning

    What are conjugate acid–base pairs?

    Svar

    Species that differ by exactly one proton.

  340. Spjald 340

    Spurning

    What is the pH of 1.0 × 10^-3 M HCl?

    Svar

    3.00, assuming complete dissociation and negligible water contribution.

  341. Spjald 341

    Spurning

    How are pKa and pKb defined?

    Svar

    pKa = -log Ka, and pKb = -log Kb.

  342. Spjald 342

    Spurning

    Why does acid strength increase across a row of comparable hydrides?

    Svar

    Increasing electronegativity stabilizes the conjugate base and polarizes the H–A bond.

  343. Spjald 343

    Spurning

    What is an amphiprotic species?

    Svar

    A species that can donate or accept a proton, such as HCO₃⁻.

  344. Spjald 344

    Spurning

    What amounts remain after a limited amount of strong base partially neutralizes weak acid HA?

    Svar

    Subtract the reacted moles from HA and form the same number of moles of A⁻. The result gives the remaining HA and formed A⁻ amounts before any equilibrium or buffer-pH calculation.

  345. Spjald 345

    Spurning

    How are Ka, Kb, pKa, and pKb related for a conjugate pair at 25°C?

    Svar

    KaKb = Kw = 1.0 × 10^-14, and pKa + pKb = pKw = 14.00.

  346. Spjald 346

    Spurning

    When does pH have little effect on a salt's solubility?

    Svar

    When neither dissolved ion reacts appreciably with H₃O⁺ or OH⁻.

  347. Spjald 347

    Spurning

    How does H₂O act in HCl + H₂O → H₃O⁺ + Cl⁻ and in NH₃ + H₂O ⇌ NH₄⁺ + OH⁻?

    Svar

    It acts as a base in the first reaction by accepting H⁺, and as an acid in the second by donating H⁺.

  348. Spjald 348

    Spurning

    After mixing weak base B with strong acid, what controls the final solution in the three stoichiometric regimes?

    Svar

    Excess B leaves a B/BH⁺ buffer; equimolar amounts leave BH⁺, so the solution is acidic; excess strong acid sets the pH from the remaining H₃O⁺.

  349. Spjald 349

    Spurning

    What two components make a typical weak-acid buffer?

    Svar

    A weak acid and a significant amount of its conjugate base.

  350. Spjald 350

    Spurning

    What do the successive half-equivalence pH values approximate in a diprotic weak-acid titration?

    Svar

    The first approximates pKa₁ and the second approximates pKa₂ because each conjugate pair has equal concentrations at its half-equivalence point.

  351. Spjald 351

    Spurning

    Which acid is stronger, one with pKa 2 or pKa 5?

    Svar

    The acid with pKa 2; lower pKa means larger Ka.

  352. Spjald 352

    Spurning

    What is the Henderson–Hasselbalch equation?

    Svar

    pH = pKa + log([A⁻]/[HA]).

  353. Spjald 353

    Spurning

    Why are larger binary hydrides down a group often stronger acids?

    Svar

    The H–A bond becomes weaker as the central atom grows, so proton release is easier.

  354. Spjald 354

    Spurning

    What mainly determines buffer capacity?

    Svar

    The concentrations of both members of the conjugate acid–base pair. Increasing both concentrations at a fixed ratio increases capacity without changing pH; capacity is best balanced for added acid and base when their concentrations are similar.

  355. Spjald 355

    Spurning

    Why does acid increase CaCO₃ solubility?

    Svar

    H₃O⁺ converts CO₃²⁻ to HCO₃⁻ or carbonic acid species, reducing free carbonate and driving more CaCO₃ to dissolve.

  356. Spjald 356

    Spurning

    What does pH < pKa imply for a weak-acid pair?

    Svar

    The protonated form HA predominates over A⁻.

  357. Spjald 357

    Spurning

    What happens when stoichiometrically equal amounts of a monoprotic weak acid and strong base are mixed?

    Svar

    The weak acid is consumed to its conjugate base; at equivalence, the solution isn't a buffer containing both forms.

  358. Spjald 358

    Spurning

    What is [H₃O⁺] when pH = 4.50?

    Svar

    3.2 × 10^-5 M, from [H₃O⁺] = 10^-pH.

  359. Spjald 359

    Spurning

    What is the pH of 0.010 M Ba(OH)₂ at 25°C?

    Svar

    About 12.30. Complete dissociation gives [OH⁻] = 0.020 M, so pOH = 1.70. At 25°C, pH + pOH = 14.00, so pH = 12.30.

  360. Spjald 360

    Spurning

    How does a buffer respond to a small amount of added strong acid?

    Svar

    Its conjugate base consumes H⁺, converting to the weak acid and limiting the pH change.

  361. Spjald 361

    Spurning

    Why is the equivalence-point solution basic in a monoprotic weak-acid–strong-base titration?

    Svar

    The conjugate base produced at equivalence reacts with water to form OH⁻, so the pH is above neutral—above 7.00 at 25°C.

  362. Spjald 362

    Spurning

    How is percent ionization calculated for a weak acid or weak base?

    Svar

    For HA, use ([H₃O⁺]equilibrium ÷ [HA]initial) × 100%. For B, use ([BH⁺]equilibrium ÷ [B]initial) × 100%, under the usual monoprotic setup.

  363. Spjald 363

    Spurning

    When is Henderson–Hasselbalch useful for an initial buffer-pH calculation?

    Svar

    Use it when both members of a conjugate acid–base pair are present in meaningful amounts, including after in-scope stoichiometry creates a buffer. Calculating the pH change after acid or base is added to an existing buffer is outside this deck’s scope.

  364. Spjald 364

    Spurning

    Why does adding oxygen atoms usually strengthen oxyacids with the same central atom?

    Svar

    Extra oxygens withdraw electron density and delocalize negative charge in the conjugate base.

  365. Spjald 365

    Spurning

    A prepared buffer is accidentally diluted to twice its intended volume; what happens to its pH and capacity?

    Svar

    Its pH stays nearly the same, and its capacity per liter is halved because both component concentrations halve. The total neutralizing moles in the sample remain unchanged.

  366. Spjald 366

    Spurning

    How does adding OH⁻ affect Mg(OH)₂ solubility?

    Svar

    It decreases solubility through the common-ion effect, shifting Mg(OH)₂(s) ⇌ Mg²⁺ + 2OH⁻ toward the solid.

  367. Spjald 367

    Spurning

    A buffer has equal [A⁻] and [HA]; what is its pH?

    Svar

    pH = pKa because log(1) = 0.

  368. Spjald 368

    Spurning

    How should a weak acid–strong base mixture be solved before equivalence?

    Svar

    First use mole stoichiometry; if both HA and A⁻ remain, use the resulting buffer relation.

  369. Spjald 369

    Spurning

    Why can pure neutral water have a pH other than 7.00?

    Svar

    Kw changes with temperature. Neutrality means [H₃O⁺] = [OH⁻], while pH = 7.00 only when Kw = 1.0 × 10^-14 at 25°C.

  370. Spjald 370

    Spurning

    25.0 mL of 0.200 M HCl is diluted to 100.0 mL; what is the pH?

    Svar

    1.301. Dilution gives [H₃O⁺] = (0.200 M)(25.0 mL)/(100.0 mL) = 0.0500 M, so pH = -log(0.0500).

  371. Spjald 371

    Spurning

    How does a buffer respond to a small amount of added strong base?

    Svar

    The weak acid consumes OH⁻, forming conjugate base and water.

  372. Spjald 372

    Spurning

    How do you find the final pH after mixing a strong acid and strong base at 25°C?

    Svar

    Use H₃O⁺ + OH⁻ → 2H₂O and compare their moles. Divide excess H₃O⁺ or OH⁻ by the total volume, then calculate pH or pOH from that excess concentration. Equal moles give pH 7.00 at 25°C.

  373. Spjald 373

    Spurning

    What distinguishes acid strength from acid concentration?

    Svar

    Strength is the equilibrium tendency to donate H⁺, reflected by Ka or pKa; concentration is the amount of acid per solution volume.

  374. Spjald 374

    Spurning

    If [A⁻]/[HA] = 10, how does pH compare with pKa?

    Svar

    pH = pKa + 1 because log 10 = 1.

  375. Spjald 375

    Spurning

    Which conjugate base is more stable, one with localized or resonance-delocalized charge?

    Svar

    The resonance-delocalized conjugate base, which generally corresponds to the stronger acid.

  376. Spjald 376

    Spurning

    Which 1.0 L buffer has greater capacity: 1.0 mol each of HA/A⁻ or 0.10 mol each at the same ratio?

    Svar

    The 1.0 mol pair; both have the same initial pH, but the larger amounts neutralize more added acid or base.

  377. Spjald 377

    Spurning

    For BHX(s) ⇌ BH⁺ + X⁻, why can raising pH increase the salt's solubility?

    Svar

    OH⁻ consumes BH⁺ to form B and H₂O, so dissolution shifts right to replace BH⁺. This is a qualitative prediction, not a pH-dependent solubility calculation.

  378. Spjald 378

    Spurning

    What does pH > pKa imply for a weak-acid pair?

    Svar

    The deprotonated form A⁻ predominates over HA.

  379. Spjald 379

    Spurning

    For HA + B ⇌ A⁻ + BH⁺, which side is favored when pKa(HA) = 4 and pKa(BH⁺) = 9?

    Svar

    Products are favored. Proton transfer moves toward the weaker acid–base pair, and K ≈ 10^(9 − 4) = 10^5.

  380. Spjald 380

    Spurning

    What is the pOH when [OH⁻] = 2.5 × 10^-4 M?

    Svar

    3.60, from -log(2.5 × 10^-4).

  381. Spjald 381

    Spurning

    What is the pH of 0.100 M HA when Ka = 1.0 × 10^-5?

    Svar

    About 3.00. The ICE setup gives Ka = x²/(0.100 − x); x ≈ 1.0 × 10^-3 M, and the 1.0% change validates the approximation.

  382. Spjald 382

    Spurning

    Why does a buffer fail after too much strong acid is added?

    Svar

    Its conjugate base is depleted, so added H⁺ is no longer consumed effectively.

  383. Spjald 383

    Spurning

    What do two clear equivalence regions on an acid titration curve suggest?

    Svar

    At least two distinguishable titratable protons; on a clean ideal curve with exactly two equivalence regions, this is consistent with a diprotic acid.

  384. Spjald 384

    Spurning

    A buffer has pKa 4.8 and [A⁻]/[HA] = 0.10; what is pH?

    Svar

    3.8, from 4.8 + log(0.10).

  385. Spjald 385

    Spurning

    Why is HCl stronger than HF in water despite F being more electronegative?

    Svar

    The H–F bond is much stronger; bond strength dominates this down-group binary-acid comparison.

  386. Spjald 386

    Spurning

    Why does percent ionization increase when a weak acid is diluted?

    Svar

    Dilution shifts ionization toward more particles, so a larger fraction ionizes even though [H₃O⁺] decreases.

  387. Spjald 387

    Spurning

    A buffer contains more HA than A⁻. Which addition can it neutralize in greater amount: strong acid or strong base?

    Svar

    Strong base. The larger HA reserve consumes more added OH⁻; a buffer with more A⁻ than HA instead has greater capacity for added strong acid.

  388. Spjald 388

    Spurning

    Why can removing a basic anion increase a salt's molar solubility without changing Ksp?

    Svar

    The equilibrium shifts to replace the consumed ion; Ksp remains fixed at the same temperature.

  389. Spjald 389

    Spurning

    Why can an acid–base indicator change color as pH changes?

    Svar

    Its protonated and deprotonated forms have different colors or other observable properties, and their relative amounts change with pH.

  390. Spjald 390

    Spurning

    What buffer results from mixing 1.0 mol HA with 0.40 mol OH⁻?

    Svar

    0.60 mol HA and 0.40 mol A⁻ remain, forming a buffer before any equilibrium calculation.

  391. Spjald 391

    Spurning

    What is the pH of 0.200 M weak base B when Kb = 2.0 × 10^-5 at 25°C?

    Svar

    About 11.30. The ICE setup gives Kb = x²/(0.200 − x); x ≈ 2.0 × 10^-3 M OH⁻, and the 1.0% change validates the approximation.

  392. Spjald 392

    Spurning

    Why does a weak acid alone not make an effective buffer?

    Svar

    It lacks a substantial conjugate-base reserve to consume added strong acid.

  393. Spjald 393

    Spurning

    What controls pH after excess strong base passes equivalence?

    Svar

    The concentration of excess OH⁻ after accounting for reaction stoichiometry and total volume.

  394. Spjald 394

    Spurning

    How should an indicator be chosen for a titration?

    Svar

    Its color-change range should fall within the steep pH change near the equivalence point.

  395. Spjald 395

    Spurning

    How can a measured pH and known pKa give a conjugate-base/acid ratio?

    Svar

    Rearrange Henderson–Hasselbalch: [A⁻]/[HA] = 10^(pH − pKa).

  396. Spjald 396

    Spurning

    Can a weak base and its conjugate acid form a buffer?

    Svar

    Yes, when both are present in significant amounts.

  397. Spjald 397

    Spurning

    For equal-volume buffers with the same conjugate-base/acid ratio, how does adding the same amount of strong acid affect a more concentrated versus less concentrated buffer?

    Svar

    The concentrated buffer changes pH less because it has greater capacity.

  398. Spjald 398

    Spurning

    How does equivalence-point pH compare for strong acid–strong base, weak acid–strong base, and weak base–strong acid titrations at 25°C?

    Svar

    Strong acid–strong base: pH 7.00. Weak acid–strong base: above 7.00 because the conjugate base reacts with water. Weak base–strong acid: below 7.00 because the conjugate acid reacts with water.

  399. Spjald 399

    Spurning

    Why should mole ratios replace concentration ratios after mixing buffer solutions?

    Svar

    Both components share the same final volume, so that volume cancels in [A⁻]/[HA].

  400. Spjald 400

    Spurning

    How does adding a little strong acid change a buffer's conjugate-base and conjugate-acid amounts?

    Svar

    The conjugate base decreases and its conjugate acid increases by the amount of strong acid consumed.

  401. Spjald 401

    Spurning

    What does entropy measure qualitatively?

    Svar

    The dispersal of matter and energy among available microstates.

  402. Spjald 402

    Spurning

    How is standard reaction entropy calculated?

    Svar

    ΔS°rxn = ΣνS°(products) − ΣνS°(reactants).

  403. Spjald 403

    Spurning

    What equation gives ΔG° from ΔH° and ΔS°, and what standard states do the degree symbols assume?

    Svar

    ΔG° = ΔH° − TΔS°. The standard states are pure substances, 1.0 M solutions, and gases at 1 atm or 1 bar; T is in kelvins and energy units must match.

  404. Spjald 404

    Spurning

    Does thermodynamic favorability guarantee a fast reaction?

    Svar

    No. A favorable reaction can be slow when its activation barrier is large.

  405. Spjald 405

    Spurning

    What is ΔG at equilibrium?

    Svar

    Zero under the current conditions because there is no net driving force.

  406. Spjald 406

    Spurning

    Why can an endothermic dissolution still be thermodynamically favorable?

    Svar

    A sufficiently positive entropy change can make TΔS exceed positive ΔH, giving negative ΔG.

  407. Spjald 407

    Spurning

    How can an unfavorable reaction be driven by a favorable one?

    Svar

    Couple them so their equations and ΔG values add to a negative overall ΔG.

  408. Spjald 408

    Spurning

    Where does oxidation occur in every electrochemical cell?

    Svar

    At the anode.

  409. Spjald 409

    Spurning

    How are standard cell potential and standard free energy related?

    Svar

    ΔG° = -nFE°cell.

  410. Spjald 410

    Spurning

    What equation gives cell potential under nonstandard conditions?

    Svar

    E = E° − (RT/nF) ln Q. When Q = 1, ln Q = 0, so E = E°.

  411. Spjald 411

    Spurning

    How is electrical charge related to current and time?

    Svar

    q = It.

  412. Spjald 412

    Spurning

    Which phase has greater molar entropy, liquid water or ice at the same temperature?

    Svar

    Liquid water because its molecules have more accessible arrangements and motion.

  413. Spjald 413

    Spurning

    Do elements in their standard states have zero standard molar entropy?

    Svar

    No. Their ΔHf° is zero, but their absolute S° values are positive above 0 K.

  414. Spjald 414

    Spurning

    How do the four ΔH° and ΔS° sign combinations determine thermodynamic favorability across temperature?

    Svar

    ΔH° < 0 and ΔS° > 0 is favorable at every temperature; ΔH° > 0 and ΔS° < 0 is thermodynamically unfavored at every temperature. If both are positive, favorability requires high temperature; if both are negative, it requires low temperature.

  415. Spjald 415

    Spurning

    What does it indicate when a thermodynamically favored process does not occur at a measurable rate?

    Svar

    It is under kinetic control, commonly because of a high activation energy; no measurable reaction does not mean the system is at equilibrium.

  416. Spjald 416

    Spurning

    How are ΔG° and K related?

    Svar

    ΔG° = -RT ln K.

  417. Spjald 417

    Spurning

    What two contributions compete in dissolving an ionic solid?

    Svar

    Enthalpy changes from separating and solvating particles, and entropy changes from their new dispersal and solvent organization.

  418. Spjald 418

    Spurning

    What must cancel when coupled reactions are added?

    Svar

    Shared intermediates, leaving the desired net reaction.

  419. Spjald 419

    Spurning

    Where does reduction occur in every electrochemical cell?

    Svar

    At the cathode.

  420. Spjald 420

    Spurning

    What sign of E°cell indicates a favorable standard galvanic reaction?

    Svar

    Positive E°cell, corresponding to negative ΔG°.

  421. Spjald 421

    Spurning

    If Q increases for a galvanic reaction, how does E change at fixed temperature?

    Svar

    E decreases according to the Nernst equation. Le Châtelier's principle does not apply to an operating cell away from equilibrium; use Q and Nernst reasoning instead.

  422. Spjald 422

    Spurning

    How are moles of electrons found from charge?

    Svar

    Moles e⁻ = q/F, where F ≈ 96485 C mol^-1 e⁻.

  423. Spjald 423

    Spurning

    How does producing more gas particles usually affect system entropy?

    Svar

    It increases entropy because the particles have more positional microstates.

  424. Spjald 424

    Spurning

    Can a dissolution with negative ΔH be unfavorable?

    Svar

    Yes. A sufficiently negative entropy change at the stated temperature can make ΔG positive.

  425. Spjald 425

    Spurning

    When can a process with ΔH > 0 and ΔS > 0 become favorable?

    Svar

    At sufficiently high temperature, when TΔS exceeds ΔH.

  426. Spjald 426

    Spurning

    How does a catalyst affect ΔG?

    Svar

    It does not change ΔG; it lowers the activation barrier for both directions.

  427. Spjald 427

    Spurning

    For A → B, ΔGf°(A) = -50 kJ mol^-1 and ΔGf°(B) = -80 kJ mol^-1. What is ΔG°rxn?

    Svar

    -30 kJ mol^-1. Use ΣνΔGf°(products) − ΣνΔGf°(reactants) = -80 − (-50).

  428. Spjald 428

    Spurning

    Why can dissolving a gas in a liquid have a negative entropy change?

    Svar

    Gas particles lose much of their translational freedom when confined and solvated in the liquid.

  429. Spjald 429

    Spurning

    If coupled steps have ΔG values +20 kJ and -35 kJ, what is overall ΔG?

    Svar

    -15 kJ, so the combined process is thermodynamically favorable under those conditions.

  430. Spjald 430

    Spurning

    What role does each half-cell solution play in an electrochemical cell?

    Svar

    It supplies dissolved redox species at an electrode interface and carries ions within its compartment. Separate compartments prevent direct mixing while the external circuit and salt bridge connect the half-cells.

  431. Spjald 431

    Spurning

    How is E°cell found from standard reduction potentials?

    Svar

    E°cell = E°cathode − E°anode, using both tabulated values as reductions.

  432. Spjald 432

    Spurning

    How does a cell's potential magnitude change as Q approaches or moves away from K, and what is E at equilibrium?

    Svar

    |E| falls toward zero as Q approaches K and grows as the system moves farther from equilibrium. At equilibrium, Q = K and E = 0.

  433. Spjald 433

    Spurning

    How many moles of electrons pass when 1.93 × 10^5 C flows?

    Svar

    2.00 mol e⁻, from q/F.

  434. Spjald 434

    Spurning

    How does a salt bridge maintain charge balance in a galvanic cell?

    Svar

    Anions migrate toward the anode compartment and cations toward the cathode compartment, countering the net charge imbalances created by the two half-reactions.

  435. Spjald 435

    Spurning

    Why does raising a substance's temperature generally increase its entropy?

    Svar

    Energy spreads across more accessible particle energy states, increasing the number of possible microscopic arrangements.

  436. Spjald 436

    Spurning

    When can a process with ΔH < 0 and ΔS < 0 be favorable?

    Svar

    At sufficiently low temperature, where the unfavorable -TΔS term is small.

  437. Spjald 437

    Spurning

    Why can diamond persist even though graphite is more stable at standard conditions?

    Svar

    Conversion has a large activation barrier, so diamond is kinetically persistent.

  438. Spjald 438

    Spurning

    What do the external circuit and measuring device do in an electrochemical cell?

    Svar

    The circuit carries electrons from anode to cathode; a voltmeter measures potential difference, while an ammeter in series measures current.

  439. Spjald 439

    Spurning

    At constant temperature, how does increasing the volume available to a gas affect its entropy?

    Svar

    Entropy increases because the gas particles can occupy more positions in the larger space, so more microstates are accessible.

  440. Spjald 440

    Spurning

    How does reversing one coupled reaction affect its ΔG?

    Svar

    It reverses the sign of that reaction's ΔG.

  441. Spjald 441

    Spurning

    Why is n required in ΔG° = -nFE°?

    Svar

    It is the moles of electrons transferred per balanced reaction, linking charge flow to reaction extent.

  442. Spjald 442

    Spurning

    What makes an electrolytic cell operate?

    Svar

    An external power source drives a thermodynamically unfavorable redox reaction; oxidation still occurs at the anode and reduction at the cathode.

  443. Spjald 443

    Spurning

    In an Mⁿ⁺/M concentration cell, which half-cell is the anode: the dilute or concentrated ion solution?

    Svar

    The dilute half-cell. Oxidation produces Mⁿ⁺ there, while reduction consumes Mⁿ⁺ in the concentrated half-cell, so electrons flow from dilute to concentrated as the concentrations move toward equality.

  444. Spjald 444

    Spurning

    How is deposited metal mass found from current and time?

    Svar

    Find q = It, convert q/F to moles e⁻, use the half-reaction ratio to moles metal, then multiply by molar mass.

  445. Spjald 445

    Spurning

    Given product S° total 500 J mol^-1 K^-1 and reactant total 420 J mol^-1 K^-1, what is ΔS°?

    Svar

    +80 J mol^-1 K^-1.

  446. Spjald 446

    Spurning

    How do electrode masses change in a Zn–Cu galvanic cell?

    Svar

    The Zn anode loses mass as Zn → Zn²⁺ + 2e⁻, while the Cu cathode gains mass as Cu²⁺ + 2e⁻ → Cu.

  447. Spjald 447

    Spurning

    What is ΔG° when ΔH° = 50 kJ mol^-1, ΔS° = 0.200 kJ mol^-1 K^-1, and T = 300 K?

    Svar

    -10 kJ mol^-1, from ΔG° = 50 − (300)(0.200).

  448. Spjald 448

    Spurning

    Why can temperature change a solid's solubility?

    Svar

    Temperature changes the balance of ΔH and TΔS, so it changes the free energy of dissolution and the equilibrium constant.

  449. Spjald 449

    Spurning

    What does the size of ΔG° relative to RT imply about K?

    Svar

    ΔG° near zero gives K near 1. When |ΔG°| is much larger than RT, K is far from 1: negative ΔG° gives K ≫ 1, while positive ΔG° gives K ≪ 1.

  450. Spjald 450

    Spurning

    Bubbles form at an inert cathode in acidic solution; which half-reaction can explain them?

    Svar

    2H⁺ + 2e⁻ → H₂(g). Gas evolution at the cathode can be direct evidence of reduction.

Translucent laboratory glassware, particle clusters, and flowing blue-to-amber energy curves on a dark background.

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AP Chemistry Flashcards: Complete 9-Unit Course Review

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