MCAT Physics & Chemistry Equation Flashcards: Formulas, Units & When to Use Them

Memorize MCAT physics and chemistry equations with variables, units, conditions, and original when-to-use examples—not a bare formula dump.

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MCAT Physics & Chemistry Equation Flashcards: Formulas, Units & When to Use Them

These 180 cards build fast recall for the equation-heavy part of MCAT Chem/Phys: 95 physics cards and 85 chemistry cards. They cover formulas, variables, units, assumptions, signs, and the small clues that tell you which relationship fits.

What the cards practice

The prompts move in several useful directions. Some ask for an equation from a concept, some ask what an equation or unit means, and others give a short original setup where the main job is choosing the right relationship. Common traps—such as static friction always equaling its maximum, Celsius in a gas law, or multiplying a reduction potential by a coefficient—get their own constraint cards.

This isn't a mechanical set of forward-and-reverse pairs. Closely related variants appear only when they train a different recall job, and the fixed order keeps them at least three unrelated cards apart. Physics and chemistry are interleaved while prerequisites stay in order inside each topic. Long-term spacing is left to the review scheduler.

Coverage

Physics covers dimensional analysis and SI units, mechanics, fluids, waves and sound, electrostatics, circuits, magnetism, light, geometrical optics, and thermal expansion. Chemistry covers gases, stoichiometry, solutions and concentration, acids and bases, buffers, thermodynamics, calorimetry, kinetics, equilibrium, solubility, and electrochemistry.

The deck is a recall layer, not a substitute for passage analysis, estimation, or multi-step calculation practice. The AAMC outline includes scientific reasoning and formula use in context, so practice problems still matter.

Scope and provenance

The current AAMC content outline was used to set the boundary, while independent open references were used to check equations, variables, units, assumptions, and sign conventions. The prompts, answers, micro-scenarios, sequence, and metadata were written independently. Public pages from UWorld, MedSchoolCoach, and MCAT Bootcamp were compared only at a structural level; no table, wording, example, or organization was copied.

The Common knowledge · CC0 1.0 label applies to the original wording, organization, metadata, and generated cover to the extent applicable rights exist. It doesn't claim ownership of scientific facts or third-party names.

This package is independent and unofficial, with no affiliation with or endorsement by AAMC. No official questions, answer keys, mark schemes, outline wording, logos, or trade dress were copied. Check the official AAMC MCAT content outline for the exam owner's current requirements.

Cartes de ce paquet

  1. Carte 1

    Question

    Which relationship gives average velocity over a time interval?

    Réponse

    vˉ=Δx/Δt\bar v=\Delta x/\Delta t.

    Displacement Δx\Delta x includes direction; average speed instead uses total distance.

  2. Carte 2

    Question

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

    Réponse

    n=m/Mn=m/M.

    Divide mass mm by molar mass MM using compatible units.

  3. Carte 3

    Question

    What is the electrostatic force between two point charges?

    Réponse

    F=keq1q2/r2F=k_e|q_1q_2|/r^2.

    It acts along the line joining the charges; like charges repel and unlike charges attract.

  4. Carte 4

    Question

    How is pH defined from hydrogen-ion activity in the usual MCAT approximation?

    Réponse

    pH=log[H+]\mathrm{pH}=-\log[H^+].

    The bracket approximation uses molar concentration for sufficiently dilute solutions.

  5. Carte 5

    Question

    How are period and frequency related?

    Réponse

    f=1/Tf=1/T.

    Frequency is in hertz and period is in seconds.

  6. Carte 6

    Question

    Which relationship gives sensible heat for a sample with known specific heat?

    Réponse

    q=mcΔTq=mc\Delta T.

    Use it within one phase when the specific heat cc is approximately constant.

  7. Carte 7

    Question

    Which relationship defines mass density?

    Réponse

    ρ=m/V\rho=m/V.

    Density has SI units of kg/m3\mathrm{kg/m^3}; 1 g/mL=1000 kg/m31\ \mathrm{g/mL}=1000\ \mathrm{kg/m^3}.

  8. Carte 8

    Question

    What is the concentration equilibrium constant for aA+bBcC+dDaA+bB\rightleftharpoons cC+dD?

    Réponse

    Kc=[C]c[D]d/([A]a[B]b)K_c=[C]^c[D]^d/([A]^a[B]^b).

    Use equilibrium concentrations and stoichiometric coefficients as exponents.

  9. Carte 9

    Question

    How is photon energy related to frequency and wavelength?

    Réponse

    E=hf=hc/λE=hf=hc/\lambda.

    Higher frequency and shorter wavelength mean greater photon energy.

  10. Carte 10

    Question

    How is standard cell potential calculated from reduction potentials?

    Réponse

    Ecell=EcathodeEanodeE^\circ_{\mathrm{cell}}=E^\circ_{\mathrm{cathode}}-E^\circ_{\mathrm{anode}}.

    Use both tabulated values as reductions; do not multiply potentials by stoichiometric coefficients.

  11. Carte 11

    Question

    Which SI base units cover the quantities most often used in MCAT mechanics and circuits?

    Réponse

    Use meters (m) for length, kilograms (kg) for mass, seconds (s) for time, and amperes (A) for electric current. Amount of substance uses moles (mol), and thermodynamic temperature uses kelvin (K).

  12. Carte 12

    Question

    How do you convert Celsius temperature to kelvin for gas-law work?

    Réponse

    TK=TC+273.15T_K=T_{^\circ C}+273.15.

    Gas-law temperatures must be absolute; a Celsius value cannot be inserted directly.

  13. Carte 13

    Question

    Which relationship gives average acceleration over a time interval?

    Réponse

    aˉ=Δv/Δt\bar a=\Delta v/\Delta t.

    Acceleration has SI units of m/s2\mathrm{m/s^2}.

  14. Carte 14

    Question

    How is reaction rate related to a species concentration and its stoichiometric coefficient?

    Réponse

    For aAcCaA\rightarrow cC, rate=(1/a)d[A]/dt=(1/c)d[C]/dt\mathrm{rate}=-(1/a)d[A]/dt=(1/c)d[C]/dt.

    The signs and coefficients make one reaction rate consistent across species.

  15. Carte 15

    Question

    What electric-field magnitude does a point charge produce?

    Réponse

    E=keq/r2E=k_e|q|/r^2.

    The field points away from a positive source charge and toward a negative one.

  16. Carte 16

    Question

    How do moles relate to the number of microscopic particles?

    Réponse

    N=nNAN=nN_A, with NA6.022×1023 mol1N_A\approx6.022\times10^{23}\ \mathrm{mol^{-1}}.

  17. Carte 17

    Question

    For constant acceleration, how does velocity change with time?

    Réponse

    v=v0+atv=v_0+at.

    Use it when acceleration is constant and the elapsed time is known.

  18. Carte 18

    Question

    How is pOH defined?

    Réponse

    pOH=log[OH]\mathrm{pOH}=-\log[OH^-].

  19. Carte 19

    Question

    How is specific gravity defined?

    Réponse

    SG=ρsubstance/ρwaterSG=\rho_{\mathrm{substance}}/\rho_{\mathrm{water}}.

    It is dimensionless because it is a density ratio.

  20. Carte 20

    Question

    How is an object's heat capacity related to heat and temperature change?

    Réponse

    q=CΔTq=C\Delta T.

    Heat capacity CC applies to the whole object; specific heat is per unit mass.

  21. Carte 21

    Question

    How are frequency and wavelength related for electromagnetic radiation in vacuum?

    Réponse

    c=fλc=f\lambda.

    Use c3.00×108 m/sc\approx3.00\times10^8\ \mathrm{m/s}.

  22. Carte 22

    Question

    Which species are omitted from a heterogeneous equilibrium expression?

    Réponse

    Pure solids and pure liquids are omitted because their activities are effectively constant. Gases and dissolved species remain.

  23. Carte 23

    Question

    What force does an electric field exert on a charge?

    Réponse

    F=qE\vec F=q\vec E.

    A negative charge feels force opposite the field direction.

  24. Carte 24

    Question

    Which equation relates pressure, volume, amount, and temperature for an ideal gas?

    Réponse

    PV=nRTPV=nRT.

    Use absolute temperature and a gas constant whose units match pressure and volume.

  25. Carte 25

    Question

    Which equation relates wave speed, frequency, and wavelength?

    Réponse

    v=fλv=f\lambda.

    The medium sets the wave speed; changing frequency then changes wavelength.

  26. Carte 26

    Question

    What is the water-ion product at 25C25^\circ\mathrm{C}?

    Réponse

    Kw=[H+][OH]1.0×1014K_w=[H^+][OH^-]\approx1.0\times10^{-14}.

    Its value changes with temperature.

  27. Carte 27

    Question

    What base-unit dimensions define one newton?

    Réponse

    1 N=1 kgms21\ \mathrm{N}=1\ \mathrm{kg\,m\,s^{-2}}.

    A force must have dimensions of mass times acceleration.

  28. Carte 28

    Question

    How is cell potential related to reaction free energy?

    Réponse

    ΔG=nFEcell\Delta G=-nFE_{\mathrm{cell}}.

    A positive galvanic-cell potential gives negative ΔG\Delta G for the written reaction.

  29. Carte 29

    Question

    For constant acceleration, how does displacement depend on time?

    Réponse

    Δx=v0t+12at2\Delta x=v_0t+\tfrac12at^2.

    Choose a positive direction first, then keep signs consistent.

  30. Carte 30

    Question

    How is molarity defined?

    Réponse

    M=nsolute/VsolutionM=n_{\mathrm{solute}}/V_{\mathrm{solution}}.

    Use solution volume in liters, so molarity has units of mol/L\mathrm{mol/L}.

  31. Carte 31

    Question

    What electric potential does a point charge produce?

    Réponse

    V=keq/rV=k_e q/r.

    Potential is scalar, so contributions from multiple charges add algebraically.

  32. Carte 32

    Question

    Which relationship gives heat absorbed or released during a phase change?

    Réponse

    q=nΔHphaseq=n\Delta H_{\mathrm{phase}}, or q=mLq=mL when latent heat is given per unit mass. Temperature stays constant during an ideal equilibrium phase change.

  33. Carte 33

    Question

    Which constant-acceleration equation avoids time?

    Réponse

    v2=v02+2aΔxv^2=v_0^2+2a\Delta x.

    It connects speed and displacement when time is absent.

  34. Carte 34

    Question

    What is the general experimental rate-law form?

    Réponse

    rate=k[A]m[B]n\mathrm{rate}=k[A]^m[B]^n.

    The exponents are determined experimentally and need not equal overall-reaction coefficients.

  35. Carte 35

    Question

    Which relationship defines pressure from a normal force?

    Réponse

    P=F/AP=F_\perp/A.

    Pressure is scalar and measured in pascals.

  36. Carte 36

    Question

    What pH–pOH relationship applies at 25C25^\circ\mathrm{C}?

    Réponse

    pH+pOH=14.00\mathrm{pH}+\mathrm{pOH}=14.00.

    More generally, pH+pOH=pKw\mathrm{pH}+\mathrm{pOH}=\mathrm{p}K_w.

  37. Carte 37

    Question

    How is wave intensity related to transmitted power and area?

    Réponse

    I=P/AI=P/A.

    Intensity is power per area, measured in W/m2\mathrm{W/m^2}.

  38. Carte 38

    Question

    How is molality defined?

    Réponse

    m=nsolute/(kg of solvent)m=n_{\mathrm{solute}}/(\mathrm{kg\ of\ solvent}).

    Molality uses solvent mass, not solution volume, and is temperature-independent.

  39. Carte 39

    Question

    What base-unit dimensions define one joule?

    Réponse

    1 J=1 Nm=1 kgm2s21\ \mathrm{J}=1\ \mathrm{N\,m}=1\ \mathrm{kg\,m^2\,s^{-2}}.

    Work, energy, and heat share this unit.

  40. Carte 40

    Question

    What is the chemistry sign-convention form of the first law?

    Réponse

    ΔU=q+w\Delta U=q+w.

    q>0q>0 means heat enters the system, and w>0w>0 means work is done on the system.

  41. Carte 41

    Question

    How is refractive index related to light speed in a medium?

    Réponse

    n=c/vn=c/v.

    A larger refractive index means a lower phase speed in the material.

  42. Carte 42

    Question

    What equation links net force and acceleration?

    Réponse

    F=ma\sum \vec F=m\vec a.

    The vector sum of external forces determines the acceleration.

  43. Carte 43

    Question

    Which relationship compares two states of a fixed amount of ideal gas?

    Réponse

    P1V1/T1=P2V2/T2P_1V_1/T_1=P_2V_2/T_2.

    It assumes the amount of gas is unchanged. Holding one variable constant gives Boyle's, Charles's, or Gay-Lussac's law.

  44. Carte 44

    Question

    How is electric potential energy related to charge and voltage?

    Réponse

    ΔU=qΔV\Delta U=q\Delta V.

    A positive charge gains potential energy when moved to higher potential; a negative charge does the opposite.

  45. Carte 45

    Question

    How are standard cell potential and the equilibrium constant related?

    Réponse

    lnK=nFEcell/(RT)\ln K=nFE^\circ_{\mathrm{cell}}/(RT).

    At equilibrium, the Nernst equation gives Ecell=0E_{\mathrm{cell}}=0.

  46. Carte 46

    Question

    What is an object's weight near Earth's surface?

    Réponse

    W=mgW=mg.

    Weight is a force in newtons; mass remains in kilograms.

  47. Carte 47

    Question

    How are KpK_p and KcK_c related for an ideal-gas reaction?

    Réponse

    Kp=Kc(RT)ΔngasK_p=K_c(RT)^{\Delta n_{\mathrm{gas}}}.

    Δngas\Delta n_{\mathrm{gas}} is gaseous product coefficients minus gaseous reactant coefficients.

  48. Carte 48

    Question

    How does pressure change with depth in a static incompressible fluid?

    Réponse

    P=P0+ρghP=P_0+\rho gh.

    hh is depth below the surface; the gauge pressure is ρgh\rho gh.

  49. Carte 49

    Question

    How do the units of a rate constant depend on overall reaction order NN?

    Réponse

    [k]=M1Ns1[k]=\mathrm{M^{1-N}s^{-1}} when rate is in M/s\mathrm{M/s}. For example, first-order kk has units of s1\mathrm{s^{-1}}.

  50. Carte 50

    Question

    Which relationship defines electric current?

    Réponse

    I=ΔQ/ΔtI=\Delta Q/\Delta t.

    Conventional current points in the direction positive charge would move.

  51. Carte 51

    Question

    What is the acid-dissociation expression for HAH++AHA\rightleftharpoons H^++A^-?

    Réponse

    Ka=[H+][A]/[HA]K_a=[H^+][A^-]/[HA].

    A larger KaK_a means a stronger acid under comparable conditions.

  52. Carte 52

    Question

    What equation governs refraction at a boundary?

    Réponse

    n1sinθ1=n2sinθ2n_1\sin\theta_1=n_2\sin\theta_2.

    Angles are measured from the normal, not the surface.

  53. Carte 53

    Question

    How is mole fraction defined for component ii?

    Réponse

    Xi=ni/jnjX_i=n_i/\sum_jn_j.

    Mole fractions are dimensionless and sum to 1.

  54. Carte 54

    Question

    What SI units and base dimensions define pressure?

    Réponse

    Pressure is measured in pascals: 1 Pa=1 N/m2=1 kgm1s21\ \mathrm{Pa}=1\ \mathrm{N/m^2}=1\ \mathrm{kg\,m^{-1}\,s^{-2}}.

  55. Carte 55

    Question

    What pressure–volume work occurs against constant external pressure?

    Réponse

    w=PextΔVw=-P_{\mathrm{ext}}\Delta V.

    Expansion has ΔV>0\Delta V>0 and therefore negative work on the system.

  56. Carte 56

    Question

    How does intensity from an isotropic point source vary with distance?

    Réponse

    I=P/(4πr2)I=P/(4\pi r^2).

    Doubling distance reduces intensity to one quarter if absorption is negligible.

  57. Carte 57

    Question

    How large can static friction become before slipping begins?

    Réponse

    fsμsNf_s\leq\mu_sN, with fs,max=μsNf_{s,\max}=\mu_sN.

    Static friction matches the needed opposing force up to its maximum; it isn't always equal to μsN\mu_sN.

  58. Carte 58

    Question

    Which relationship handles dilution when solute amount is conserved?

    Réponse

    M1V1=M2V2M_1V_1=M_2V_2.

    It applies when solvent is added without reaction or solute loss.

  59. Carte 59

    Question

    What is Ohm's law for an ohmic element?

    Réponse

    V=IRV=IR.

    It applies when resistance is approximately constant over the operating range.

  60. Carte 60

    Question

    How is the reaction quotient QQ constructed?

    Réponse

    Use the same expression as KK, but insert the current—not necessarily equilibrium—activities or concentrations.

  61. Carte 61

    Question

    What is the usual model for kinetic friction on a sliding surface?

    Réponse

    fk=μkNf_k=\mu_kN.

    The force points opposite the relative sliding motion.

  62. Carte 62

    Question

    What is the base-dissociation expression for B+H2OHB++OHB+H_2O\rightleftharpoons HB^++OH^-?

    Réponse

    Kb=[HB+][OH]/[B]K_b=[HB^+][OH^-]/[B].

  63. Carte 63

    Question

    What equation expresses Pascal's principle in a hydraulic device?

    Réponse

    F1/A1=F2/A2F_1/A_1=F_2/A_2.

    An applied pressure change is transmitted through a confined incompressible fluid.

  64. Carte 64

    Question

    How much charge passes through a cell carrying constant current?

    Réponse

    Q=ItQ=It.

    Use amperes and seconds to obtain coulombs.

  65. Carte 65

    Question

    What is the critical-angle condition for total internal reflection?

    Réponse

    sinθc=n2/n1\sin\theta_c=n_2/n_1 when n1>n2n_1>n_2.

    Total internal reflection occurs only when light starts in the higher-index medium and θ1>θc\theta_1>\theta_c.

  66. Carte 66

    Question

    How is total pressure related to component pressures in an ideal gas mixture?

    Réponse

    Ptot=iPiP_{\mathrm{tot}}=\sum_iP_i.

    Dalton's law treats each gas as contributing its own partial pressure.

  67. Carte 67

    Question

    How is the coulomb expressed through SI base units?

    Réponse

    1 C=1 As1\ \mathrm{C}=1\ \mathrm{A\,s}.

    Charge equals current multiplied by time.

  68. Carte 68

    Question

    How is standard reaction enthalpy obtained from standard formation enthalpies?

    Réponse

    ΔHrxn=νΔHf(products)νΔHf(reactants)\Delta H^\circ_{\mathrm{rxn}}=\sum\nu\Delta H_f^\circ(\mathrm{products})-\sum\nu\Delta H_f^\circ(\mathrm{reactants}).

  69. Carte 69

    Question

    How is sound intensity level in decibels defined?

    Réponse

    β=10log10(I/I0)\beta=10\log_{10}(I/I_0).

    The reference intensity is commonly I0=1012 W/m2I_0=10^{-12}\ \mathrm{W/m^2}.

  70. Carte 70

    Question

    What is the integrated rate law for a zero-order reactant?

    Réponse

    [A]t=[A]0kt[A]_t=[A]_0-kt.

    A plot of [A][A] versus time is linear with slope k-k.

  71. Carte 71

    Question

    How does a uniform wire's resistance depend on material and geometry?

    Réponse

    R=ρL/AR=\rho L/A.

    Longer wires have more resistance; larger cross-sectional area lowers it. Here ρ\rho is resistivity.

  72. Carte 72

    Question

    Which equation gives the magnitude of torque from a force?

    Réponse

    τ=rFsinθ=rF\tau=rF\sin\theta=r_\perp F.

    Here rr_\perp is the perpendicular lever arm from the pivot to the force's line of action.

  73. Carte 73

    Question

    How is mass percent composition calculated?

    Réponse

    % by mass=100×mcomponent/mtotal\%\mathrm{\ by\ mass}=100\times m_{\mathrm{component}}/m_{\mathrm{total}}.

  74. Carte 74

    Question

    What buoyant force acts on a submerged object?

    Réponse

    FB=ρfluidVdisplacedgF_B=\rho_{\mathrm{fluid}}V_{\mathrm{displaced}}g.

    It equals the weight of displaced fluid.

  75. Carte 75

    Question

    How is pKa\mathrm{p}K_a related to KaK_a?

    Réponse

    pKa=logKa\mathrm{p}K_a=-\log K_a.

    Lower pKa\mathrm{p}K_a corresponds to the stronger acid.

  76. Carte 76

    Question

    What two conditions define static mechanical equilibrium?

    Réponse

    F=0\sum \vec F=0 and τ=0\sum\tau=0.

    Both translational and rotational equilibrium are required.

  77. Carte 77

    Question

    How does Hess's law combine reaction enthalpies?

    Réponse

    Add the manipulated step equations and add their ΔH\Delta H values. Reversing a step changes the sign; multiplying a step multiplies ΔH\Delta H by the same factor.

  78. Carte 78

    Question

    Which equivalent forms give electrical power in a resistor?

    Réponse

    P=IV=I2R=V2/RP=IV=I^2R=V^2/R.

    Choose the form that uses the known current, voltage, and resistance.

  79. Carte 79

    Question

    How does mole fraction determine an ideal gas's partial pressure?

    Réponse

    Pi=XiPtotP_i=X_iP_{\mathrm{tot}}, where Xi=ni/ntotX_i=n_i/n_{\mathrm{tot}}.

  80. Carte 80

    Question

    What decibel change corresponds to multiplying sound intensity by 10?

    Réponse

    A tenfold intensity increase adds 10 dB10\ \mathrm{dB} because 10log10(10)=1010\log_{10}(10)=10. A hundredfold increase adds 20 dB20\ \mathrm{dB}.

  81. Carte 81

    Question

    How does comparing QQ with KK predict reaction direction?

    Réponse

    If Q<KQ<K, the forward direction is favored. If Q>KQ>K, the reverse direction is favored. If Q=KQ=K, the system is at equilibrium.

  82. Carte 82

    Question

    Which equation relates object, image, and focal distances for a thin lens or spherical mirror?

    Réponse

    1/f=1/do+1/di1/f=1/d_o+1/d_i.

    Use the adopted sign convention consistently; positive did_i usually denotes a real image.

  83. Carte 83

    Question

    How do charge and Faraday's constant give moles of electrons?

    Réponse

    ne=Q/Fn_{e^-}=Q/F, where F9.6485×104 C/mol eF\approx9.6485\times10^4\ \mathrm{C/mol\ e^-}.

  84. Carte 84

    Question

    How is the volt expressed through joules and coulombs?

    Réponse

    1 V=1 J/C1\ \mathrm{V}=1\ \mathrm{J/C}.

    Voltage is energy transferred per unit charge.

  85. Carte 85

    Question

    How is pKb\mathrm{p}K_b related to KbK_b?

    Réponse

    pKb=logKb\mathrm{p}K_b=-\log K_b.

  86. Carte 86

    Question

    What work is done by a constant force through a displacement?

    Réponse

    W=FdcosθW=Fd\cos\theta.

    θ\theta is the angle between the force and displacement; perpendicular force does zero work.

  87. Carte 87

    Question

    How is volume percent calculated for a liquid mixture?

    Réponse

    % by volume=100×Vcomponent/Vsolution\%\mathrm{\ by\ volume}=100\times V_{\mathrm{component}}/V_{\mathrm{solution}}.

    Use it only when the problem defines composition by volume.

  88. Carte 88

    Question

    How do resistors combine in series?

    Réponse

    Req=iRiR_{\mathrm{eq}}=\sum_iR_i.

    Series elements carry the same current and their voltage drops add.

  89. Carte 89

    Question

    What is the half-life of a zero-order reactant?

    Réponse

    t1/2=[A]0/(2k)t_{1/2}=[A]_0/(2k).

    Unlike first-order half-life, it depends on starting concentration.

  90. Carte 90

    Question

    How is volumetric flow rate related to cross-sectional area and speed?

    Réponse

    Q=AvQ=Av.

    QQ has SI units of m3/s\mathrm{m^3/s} and assumes the average speed across the section.

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  91. Carte 91

    Question

    How can average bond energies estimate reaction enthalpy?

    Réponse

    ΔHrxnD(bonds broken)D(bonds formed)\Delta H_{\mathrm{rxn}}\approx\sum D(\mathrm{bonds\ broken})-\sum D(\mathrm{bonds\ formed}).

    Breaking bonds costs energy; forming bonds releases it.

  92. Carte 92

    Question

    What is the translational kinetic energy of a point mass?

    Réponse

    K=12mv2K=\tfrac12mv^2.

    Kinetic energy is a scalar measured in joules.

  93. Carte 93

    Question

    What ratio defines parts per million by mass?

    Réponse

    ppm=106×msolute/msolution\mathrm{ppm}=10^6\times m_{\mathrm{solute}}/m_{\mathrm{solution}}.

    For dilute aqueous solutions, 1 ppm1\ \mathrm{ppm} is often approximately 1 mg/L1\ \mathrm{mg/L} when density is near 1 kg/L1\ \mathrm{kg/L}.

  94. Carte 94

    Question

    How do resistors combine in parallel?

    Réponse

    1/Req=i1/Ri1/R_{\mathrm{eq}}=\sum_i1/R_i.

    Parallel branches share the same voltage, and the equivalent resistance is below the smallest branch resistance.

  95. Carte 95

    Question

    How are the dissociation constants of a conjugate acid–base pair related?

    Réponse

    KaKb=KwK_aK_b=K_w.

    At 25C25^\circ\mathrm{C}, pKa+pKb=14.00\mathrm{p}K_a+\mathrm{p}K_b=14.00.

  96. Carte 96

    Question

    How do powers of ten combine when multiplying quantities in scientific notation?

    Réponse

    Multiply the coefficients and add the exponents: (a×10m)(b×10n)=ab×10m+n(a\times10^m)(b\times10^n)=ab\times10^{m+n}. Then normalize the result so its final coefficient cc satisfies 1c<101\leq|c|<10; a coefficient of exactly 10 becomes 1 while the exponent increases by 1.

  97. Carte 97

    Question

    How many moles of a product requiring zz electrons per mole form during electrolysis?

    Réponse

    nproduct=Q/(zF)=It/(zF)n_{\mathrm{product}}=Q/(zF)=It/(zF).

    This is the ideal Faraday-law result before any stated efficiency correction.

  98. Carte 98

    Question

    How is lateral magnification related to image and object distances?

    Réponse

    m=hi/ho=di/dom=h_i/h_o=-d_i/d_o.

    A negative magnification indicates inversion; m|m| gives the size ratio.

  99. Carte 99

    Question

    What is the average translational kinetic energy per mole of an ideal gas?

    Réponse

    K=32RT\overline{K}=\tfrac32RT.

    It depends only on absolute temperature, not molecular identity.

  100. Carte 100

    Question

    What are the allowed frequencies of a string fixed at both ends?

    Réponse

    fn=nv/(2L)f_n=nv/(2L) for n=1,2,3,n=1,2,3,\ldots.

    Both ends are nodes, so every positive integer harmonic is allowed.

  101. Carte 101

    Question

    How does reversing a reaction change its equilibrium constant?

    Réponse

    Kreverse=1/KforwardK_{\mathrm{reverse}}=1/K_{\mathrm{forward}}.

  102. Carte 102

    Question

    What does the work–energy theorem say?

    Réponse

    Wnet=ΔKW_{\mathrm{net}}=\Delta K.

    Net work changes kinetic energy, even when individual forces are nonconservative.

  103. Carte 103

    Question

    What entropy change accompanies reversible heat transfer at constant temperature?

    Réponse

    ΔS=qrev/T\Delta S=q_{\mathrm{rev}}/T.

    Temperature must be in kelvin.

  104. Carte 104

    Question

    What does Kirchhoff's junction rule require?

    Réponse

    Iin=Iout\sum I_{\mathrm{in}}=\sum I_{\mathrm{out}}.

    It follows from conservation of charge at a node.

  105. Carte 105

    Question

    Which equation estimates the pH of a buffer made from a weak acid and its conjugate base?

    Réponse

    pH=pKa+log([A]/[HA])\mathrm{pH}=\mathrm{p}K_a+\log([A^-]/[HA]).

    Henderson–Hasselbalch works best when both buffer components are present in meaningful amounts.

  106. Carte 106

    Question

    What continuity relationship applies to steady incompressible flow?

    Réponse

    A1v1=A2v2A_1v_1=A_2v_2.

    A narrower section has a larger average speed when the same volume passes each second.

  107. Carte 107

    Question

    A liquid has known density and volume. Which rearranged density relationship gives its mass?

    Réponse

    m=ρVm=\rho V.

    Here mm is mass, ρ\rho is density, and VV is volume; use compatible units when density and volume are known. For example, 25 mL25\ \mathrm{mL} of a 1.20 g/mL1.20\ \mathrm{g/mL} solution has mass m=(1.20)(25)=30 gm=(1.20)(25)=30\ \mathrm{g}.

  108. Carte 108

    Question

    What is local gravitational potential energy near Earth's surface?

    Réponse

    Ug=mghU_g=mgh.

    Only changes matter: ΔUg=mgΔh\Delta U_g=mg\Delta h when gg is approximately constant.

  109. Carte 109

    Question

    What is the integrated rate law for a first-order reactant?

    Réponse

    ln[A]t=ln[A]0kt\ln[A]_t=\ln[A]_0-kt.

    A plot of ln[A]\ln[A] versus time is linear with slope k-k.

  110. Carte 110

    Question

    What are the allowed frequencies of a pipe open at both ends?

    Réponse

    fn=nv/(2L)f_n=nv/(2L) for n=1,2,3,n=1,2,3,\ldots.

    Both open ends are displacement antinodes.

  111. Carte 111

    Question

    Which equation relates Gibbs free energy, enthalpy, and entropy at constant temperature?

    Réponse

    ΔG=ΔHTΔS\Delta G=\Delta H-T\Delta S.

    Use compatible energy units and absolute temperature.

  112. Carte 112

    Question

    What does Kirchhoff's loop rule require?

    Réponse

    ΔV=0\sum\Delta V=0 around any closed loop.

    Voltage rises and drops must be assigned consistently with the chosen traversal direction.

  113. Carte 113

    Question

    What elastic potential energy is stored in an ideal spring?

    Réponse

    Us=12kx2U_s=\tfrac12kx^2.

    xx is displacement from equilibrium and kk has units of N/m\mathrm{N/m}.

  114. Carte 114

    Question

    How does multiplying every reaction coefficient by a factor nn change KK?

    Réponse

    Knew=KnK_{\mathrm{new}}=K^n.

    Dividing coefficients by nn takes the corresponding root.

  115. Carte 115

    Question

    How can you estimate the order of magnitude of a quotient without a calculator?

    Réponse

    Divide the leading coefficients and subtract powers of ten: (a×10m)/(b×10n)=(a/b)×10mn(a\times10^m)/(b\times10^n)=(a/b)\times10^{m-n}. Normalize the result so its final coefficient cc satisfies 1c<101\leq|c|<10; if the coefficient is exactly 10, write it as 1 and increase the exponent by 1.

  116. Carte 116

    Question

    How is lens power related to focal length?

    Réponse

    P=1/fP=1/f with ff in meters.

    Power is measured in diopters; converging lenses have positive power and diverging lenses negative power.

  117. Carte 117

    Question

    How does root-mean-square molecular speed depend on molar mass?

    Réponse

    vrms=3RT/Mv_{\mathrm{rms}}=\sqrt{3RT/M}.

    Use molar mass MM in kg/mol\mathrm{kg/mol}; lighter gases move faster at the same temperature.

  118. Carte 118

    Question

    Which equation relates pressure, speed, and height along ideal fluid flow?

    Réponse

    P+12ρv2+ρgy=constantP+\tfrac12\rho v^2+\rho gy=\text{constant}.

    Bernoulli's equation assumes steady, incompressible, nonviscous flow along a streamline.

  119. Carte 119

    Question

    What is the Nernst equation for a cell reaction?

    Réponse

    E=E(RT/(nF))lnQE=E^\circ-(RT/(nF))\ln Q.

    At 25C25^\circ\mathrm{C}, E=E(0.0592 V/n)logQE=E^\circ-(0.0592\ \mathrm{V}/n)\log Q.

  120. Carte 120

    Question

    What force does an ideal spring exert?

    Réponse

    Fs=kxF_s=-kx.

    The minus sign means the spring force points back toward equilibrium.

  121. Carte 121

    Question

    What conjugate-base-to-acid ratio gives a target buffer pH?

    Réponse

    [A]/[HA]=10pHpKa[A^-]/[HA]=10^{\mathrm{pH}-\mathrm{p}K_a}.

    This is Henderson–Hasselbalch solved for the composition ratio.

  122. Carte 122

    Question

    Which relationship defines capacitance?

    Réponse

    C=Q/VC=Q/V.

    Capacitance is charge stored per potential difference and is measured in farads.

  123. Carte 123

    Question

    How do elemental mass percentages lead to an empirical formula?

    Réponse

    Convert each element's mass to moles, divide every mole amount by the smallest, then multiply to obtain the smallest whole-number ratio. The retrieval target is the mole ratio, not the mass ratio.

  124. Carte 124

    Question

    When can mechanical energy be conserved?

    Réponse

    Ki+Ui=Kf+UfK_i+U_i=K_f+U_f when only conservative forces do work. With nonconservative work, use Wnc=Δ(K+U)W_{nc}=\Delta(K+U).

  125. Carte 125

    Question

    What sign of ΔG\Delta G indicates a thermodynamically spontaneous forward process at constant temperature and pressure?

    Réponse

    ΔG<0\Delta G<0. At equilibrium ΔG=0\Delta G=0; ΔG>0\Delta G>0 favors the reverse direction. Spontaneity does not say the reaction is fast.

  126. Carte 126

    Question

    Which metric-prefix factors correspond to milli-, micro-, and nano-?

    Réponse

    Milli is 10310^{-3}, micro is 10610^{-6}, and nano is 10910^{-9}. Each step is a factor of 10310^3.

  127. Carte 127

    Question

    What is the pH at the half-equivalence point of a weak-acid/strong-base titration?

    Réponse

    pH=pKa\mathrm{pH}=\mathrm{p}K_a.

    Half of the original weak acid has become conjugate base, so [A]=[HA][A^-]=[HA].

  128. Carte 128

    Question

    What are the allowed frequencies of a pipe closed at one end?

    Réponse

    fn=nv/(4L)f_n=nv/(4L) for odd n=1,3,5,n=1,3,5,\ldots.

    The closed end is a displacement node and the open end is an antinode.

  129. Carte 129

    Question

    What is the half-life of a first-order reaction?

    Réponse

    t1/2=ln2/kt_{1/2}=\ln2/k.

    It is independent of initial concentration.

  130. Carte 130

    Question

    How is the focal length of a spherical mirror related to its radius of curvature?

    Réponse

    f=R/2f=R/2.

    This paraxial approximation applies to rays near the principal axis.

  131. Carte 131

    Question

    How is a molecular formula obtained from an empirical formula?

    Réponse

    k=Mmolecular/Mempiricalk=M_{\mathrm{molecular}}/M_{\mathrm{empirical}}, then multiply every empirical subscript by the integer kk.

  132. Carte 132

    Question

    What is the capacitance of an ideal parallel-plate capacitor?

    Réponse

    C=κε0A/dC=\kappa\varepsilon_0A/d.

    Larger plate area or dielectric constant raises capacitance; greater separation lowers it.

  133. Carte 133

    Question

    What does Graham's law predict for two gas effusion rates?

    Réponse

    r1/r2=M2/M1r_1/r_2=\sqrt{M_2/M_1}.

    At the same temperature, effusion rate is inversely proportional to the square root of molar mass.

  134. Carte 134

    Question

    Which relationship gives laminar flow through a cylindrical tube?

    Réponse

    Q=πr4ΔP8ηLQ=\dfrac{\pi r^4\Delta P}{8\eta L}.

    Poiseuille flow is extremely sensitive to radius and assumes a Newtonian fluid in a long rigid tube.

  135. Carte 135

    Question

    How do equilibrium constants combine when reactions are added?

    Réponse

    Multiply them: Koverall=K1K2K_{\mathrm{overall}}=K_1K_2\cdots.

    Reverse or scale each component reaction before applying the reciprocal or power rule.

  136. Carte 136

    Question

    Which relationship defines average power?

    Réponse

    P=W/ΔtP=W/\Delta t.

    Power is the rate of energy transfer and is measured in watts, where 1 W=1 J/s1\ \mathrm{W}=1\ \mathrm{J/s}.

  137. Carte 137

    Question

    What voltage does an ideal concentration cell produce at 25C25^\circ\mathrm{C}?

    Réponse

    E=(0.0592 V/n)log(Chigh/Clow)E=(0.0592\ \mathrm{V}/n)\log(C_{\mathrm{high}}/C_{\mathrm{low}}) for the simple same-ion setup. The voltage vanishes when concentrations equalize.

  138. Carte 138

    Question

    Which equivalent forms give energy stored in a capacitor?

    Réponse

    U=12CV2=12QV=Q2/(2C)U=\tfrac12CV^2=\tfrac12QV=Q^2/(2C).

    Use the form matching the known variables.

  139. Carte 139

    Question

    How is standard free-energy change related to the equilibrium constant?

    Réponse

    ΔG=RTlnK\Delta G^\circ=-RT\ln K.

    A large KK corresponds to negative ΔG\Delta G^\circ.

  140. Carte 140

    Question

    What instantaneous power is delivered by a force to a moving object?

    Réponse

    P=Fv=FvcosθP=\vec F\cdot\vec v=Fv\cos\theta.

    Only the force component parallel to velocity transfers energy at that instant.

  141. Carte 141

    Question

    How is percent yield calculated?

    Réponse

    %yield=100×(actual yield)/(theoretical yield)\%\mathrm{yield}=100\times(\mathrm{actual\ yield})/(\mathrm{theoretical\ yield}).

  142. Carte 142

    Question

    What condition gives constructive interference in a double-slit experiment?

    Réponse

    dsinθ=mλd\sin\theta=m\lambda for integers mm.

    For small angles on a screen, fringe position is approximately ym=mλL/dy_m=m\lambda L/d.

  143. Carte 143

    Question

    What stoichiometric condition marks acid–base equivalence?

    Réponse

    Acid equivalents equal base equivalents: naza=nbzbn_a|z_a|=n_b|z_b|. For molarity and volume, MaVaza=MbVbzbM_aV_a|z_a|=M_bV_b|z_b|.

  144. Carte 144

    Question

    What value is useful for the speed of light in vacuum?

    Réponse

    Use c3.00×108 m/sc\approx3.00\times10^8\ \mathrm{m/s}. In a material, light travels at v=c/nv=c/n.

  145. Carte 145

    Question

    Which Doppler relationship applies to collinear motion in a stationary medium?

    Réponse

    f=fv±vovvsf'=f\dfrac{v\pm v_o}{v\mp v_s}.

    Choose signs that raise ff' when source and observer approach and lower it when they separate.

  146. Carte 146

    Question

    What is the integrated rate law for a second-order reaction in one reactant?

    Réponse

    1/[A]t=1/[A]0+kt1/[A]_t=1/[A]_0+kt.

    A plot of 1/[A]1/[A] versus time is linear with slope kk.

  147. Carte 147

    Question

    What dimensionless quantity helps predict laminar versus turbulent pipe flow?

    Réponse

    Re=ρvD/ηRe=\rho vD/\eta.

    Lower Reynolds number favors laminar flow; higher values make turbulence more likely.

  148. Carte 148

    Question

    How is reaction free energy related to standard free energy and reaction quotient?

    Réponse

    ΔG=ΔG+RTlnQ\Delta G=\Delta G^\circ+RT\ln Q.

    This predicts the favorable direction under nonstandard conditions.

  149. Carte 149

    Question

    What is linear momentum?

    Réponse

    p=mv\vec p=m\vec v.

    Momentum is a vector with SI units of kgm/s\mathrm{kg\,m/s}.

  150. Carte 150

    Question

    How do you identify the limiting reactant from available moles?

    Réponse

    Compare ni/νin_i/\nu_i for each reactant, where νi\nu_i is its stoichiometric coefficient. The smallest ratio runs out first and sets the reaction extent.

  151. Carte 151

    Question

    How do capacitors combine in parallel?

    Réponse

    Ceq=iCiC_{\mathrm{eq}}=\sum_iC_i.

    Parallel capacitors share voltage and their stored charges add.

  152. Carte 152

    Question

    How do you estimate the pH of a dilute strong monoprotic acid of concentration CC?

    Réponse

    Assuming complete dissociation and negligible water autoionization, [H+]C[H^+]\approx C and pHlogC\mathrm{pH}\approx-\log C.

  153. Carte 153

    Question

    What relationship connects impulse and momentum change?

    Réponse

    J=Fdt=Δp\vec J=\int\vec F\,dt=\Delta\vec p. For a constant force, J=FΔt\vec J=\vec F\Delta t.

  154. Carte 154

    Question

    What is the solubility-product expression for MaXb(s)aM+bXM_aX_b(s)\rightleftharpoons aM+bX?

    Réponse

    Ksp=[M]a[X]bK_{sp}=[M]^a[X]^b.

    The solid is omitted; dissolved-ion concentrations carry their stoichiometric exponents.

  155. Carte 155

    Question

    What condition gives minima from a single slit of width aa?

    Réponse

    asinθ=mλa\sin\theta=m\lambda for m=1,2,3,m=1,2,3,\ldots.

    The central maximum lies between the first minima.

  156. Carte 156

    Question

    Which way do electrons flow in both galvanic and electrolytic cells?

    Réponse

    Electrons flow through the external circuit from anode to cathode. Oxidation is always at the anode; reduction is always at the cathode.

  157. Carte 157

    Question

    How do capacitors combine in series?

    Réponse

    1/Ceq=i1/Ci1/C_{\mathrm{eq}}=\sum_i1/C_i.

    Series capacitors carry equal charge magnitude, and the equivalent capacitance is below the smallest one.

  158. Carte 158

    Question

    Which equation adds molecular size and attraction corrections to the ideal gas law?

    Réponse

    (P+an2V2)(Vnb)=nRT\left(P+a\dfrac{n^2}{V^2}\right)(V-nb)=nRT.

    The aa term corrects attractions; bb corrects finite molecular volume.

  159. Carte 159

    Question

    What beat frequency is heard from two nearby tones?

    Réponse

    fbeat=f1f2f_{\mathrm{beat}}=|f_1-f_2|.

    Beats arise from alternating constructive and destructive interference.

  160. Carte 160

    Question

    What near-Earth gravitational acceleration is useful for MCAT estimates?

    Réponse

    Use g9.8 m/s2g\approx9.8\ \mathrm{m/s^2}, or 10 m/s210\ \mathrm{m/s^2} for quick order-of-magnitude work when the choices allow it.

  161. Carte 161

    Question

    What weak-acid approximation estimates [H+][H^+] for initial concentration CC?

    Réponse

    [H+]KaC[H^+]\approx\sqrt{K_aC} when dissociation is small compared with CC. Check that the resulting ionization is roughly below 5%.

  162. Carte 162

    Question

    Why does a constriction in a horizontal ideal-fluid tube usually have lower static pressure?

    Réponse

    Continuity raises the speed in the narrow section, and Bernoulli's relationship then requires lower static pressure when height is unchanged. This is the Venturi effect.

  163. Carte 163

    Question

    How does a solid's length change for a small temperature shift?

    Réponse

    ΔL=αL0ΔT\Delta L=\alpha L_0\Delta T.

    α\alpha is the linear expansion coefficient; the approximation assumes it stays nearly constant.

  164. Carte 164

    Question

    When is total linear momentum conserved?

    Réponse

    pi=pf\sum\vec p_i=\sum\vec p_f when the net external impulse on the chosen system is zero. Internal forces can redistribute momentum without changing the total.

  165. Carte 165

    Question

    What relationship connects absorbance and concentration in a dilute solution?

    Réponse

    A=εbcA=\varepsilon bc.

    Beer–Lambert law uses molar absorptivity ε\varepsilon, path length bb, and concentration cc; it is most reliable in the linear dilute range.

  166. Carte 166

    Question

    What magnetic force acts on a moving charge?

    Réponse

    F=qvBsinθF=|q|vB\sin\theta.

    The force is perpendicular to both velocity and magnetic field, so it changes direction but does no work.

  167. Carte 167

    Question

    How does the Arrhenius equation relate rate constant and temperature?

    Réponse

    k=AeEa/(RT)k=Ae^{-E_a/(RT)}. Equivalently, lnk=lnAEa/(RT)\ln k=\ln A-E_a/(RT). Higher temperature or lower activation energy increases kk.

  168. Carte 168

    Question

    What is centripetal acceleration for uniform circular motion?

    Réponse

    ac=v2/r=ω2ra_c=v^2/r=\omega^2r.

    It points toward the center even when speed is constant.

  169. Carte 169

    Question

    How do ions in a salt bridge move to maintain electroneutrality in a galvanic cell?

    Réponse

    Anions migrate toward the anode compartment, where oxidation creates excess positive charge. Cations migrate toward the cathode compartment, where reduction creates relative excess negative charge by consuming cations or producing anions. These migrations maintain charge neutrality.

  170. Carte 170

    Question

    What is the maximum kinetic energy in the photoelectric effect?

    Réponse

    Kmax=hfϕK_{\max}=hf-\phi.

    Electrons are emitted when hfϕhf\geq\phi. Exactly at threshold, hf=ϕhf=\phi and Kmax=0K_{\max}=0; positive kinetic energy requires hf>ϕhf>\phi.

  171. Carte 171

    Question

    What molar volume is a useful ideal-gas reference at 0C0^\circ\mathrm{C} and 1 atm1\ \mathrm{atm}?

    Réponse

    About 22.4 L/mol22.4\ \mathrm{L/mol}.

    This shortcut is tied to those stated conditions, not every convention labeled STP.

  172. Carte 172

    Question

    What is the period of an ideal mass–spring oscillator?

    Réponse

    T=2πm/kT=2\pi\sqrt{m/k}.

    The small-amplitude period depends on mass and spring stiffness, not amplitude.

  173. Carte 173

    Question

    For MX2(s)M2++2XMX_2(s)\rightleftharpoons M^{2+}+2X^-, how is KspK_{sp} related to molar solubility ss in pure water?

    Réponse

    Ksp=s(2s)2=4s3K_{sp}=s(2s)^2=4s^3.

    This relation changes when a common ion is already present.

  174. Carte 174

    Question

    What does a dimensional-consistency check require of an equation?

    Réponse

    Every term that is added or equated must have the same dimensions. A mismatch, such as adding energy to force, proves the equation or unit conversion is wrong.

  175. Carte 175

    Question

    How is percent ionization of a weak acid calculated?

    Réponse

    %ionization=100×[H+]eq/[HA]0\%\mathrm{ionization}=100\times[H^+]_{\mathrm{eq}}/[HA]_0 for a monoprotic acid. Dilution generally raises percent ionization even while lowering [H+][H^+].

  176. Carte 176

    Question

    What pressure difference does surface tension create across one spherical liquid–gas interface?

    Réponse

    ΔP=2γ/r\Delta P=2\gamma/r.

    For a soap bubble with two interfaces, ΔP=4γ/r\Delta P=4\gamma/r. Smaller radii require larger pressure differences.

  177. Carte 177

    Question

    What energy balance applies in an insulated calorimetry problem?

    Réponse

    q=0\sum q=0, so heat lost by hotter parts equals heat gained by colder parts and the calorimeter. Include every component named in the setup.

  178. Carte 178

    Question

    What radius does a charged particle follow when moving perpendicular to a uniform magnetic field?

    Réponse

    r=mv/(qB)r=mv/(|q|B).

    The magnetic force supplies centripetal force; faster or heavier particles curve less.

  179. Carte 179

    Question

    How do you find concentration after mixing solutions of the same nonreacting solute?

    Réponse

    Mf=(M1V1+M2V2)/(V1+V2)M_f=(M_1V_1+M_2V_2)/(V_1+V_2) when volumes are additive. If the solutes react, do stoichiometry before calculating the remaining concentration.

  180. Carte 180

    Question

    What net inward force is required for circular motion?

    Réponse

    Fc=mv2/r=mω2rF_c=mv^2/r=m\omega^2r.

    “Centripetal force” is the inward net force supplied by real forces, not an extra force.

Abstract study cards linking physics motion, waves, circuits, and chemistry lab motifs.

180 cartes

MCAT Physics & Chemistry Equation Flashcards: Formulas, Units & When to Use Them

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