Exam Resources ❮ 397
DG° = DH° - TDS°
= - RT in K = - 2.303 RT log K
= - nFE°
DG = DG° + RT ln Q = DG° + 2.303 RT log Q
q = mcDT
Cp = DH/DT
Light and Electrons
E = energy n = frequency l = wavelength
p = momentum v = velocity n = principal quantum number
m = mass E = hn c = ln
En = (-2.178 × 10 -^18 /n^2 )J
Speed of light, c = 3.0 × 108 ms-^1
Planck’s constant, h = 6.63 × 10 -^34 Js
Solutions
Molarity, M = moles solute per liter solution
Kinetics
ln[A ]t - ln[A ]o = -kt
kt
1
[A]
1
to[A]
−=
=
−
k +
E
RT
ln
1
a ln A
Ea = activation energy
k = rate constant
A = frequency factor
t1/2 = 0.693/k
Electrochemistry
I = current (amperes) q = charge (coulombs)
E° = standard reduction potential K = equilibrium constant
Faraday’s constant, F = 96,500 coulombs per mole of electrons
==
°
Iqt
nE
/log
0.0592
K
Equilibrium
Q = reaction quotient
Q
[C][D]
[A][B]
,whereaA bB cC dD
cd
=+ab +
equilibrium constants:
Ka (weak acid) Kb (weak base) Kw (water)
Kp (gas pressure) Kc (molar concentrations)
KK K
[H ][A]
[HA]
[OH][HB]
[B]
(P)(P)
ab p (P)(P)
c
c
d
d
a
a
b
== = b
+− −+
22-Moore_APP_p371-412.indd 397 31/05/18 2:00 pm