Reaction rate constants for the uni-, bi-, and tri-molecular reactions

Eyring equation: k = (kBT/h) e^(-delta G/RT)

The above equation can be use for uni-molecular directly. The simplified interpretation is that the reaction rate constant is proportional to the frequency of the reaction mode (kBT/h) and the relative concentrations of the transition state and the reactant(s):
[P(TS)/1 bar] / [P(reactant)/1 bar] = e^(-delta G/RT), where delta G is the standard Gibbs energy difference between the transition state and the reactant at temperature T and the standard state.

For a bi-molecular reaction, [P(TS)/1 bar] / {[P(A)/1 bar][P(B)/1 bar]} = e^(-delta G/RT),and again, the delta G is the standard Gibbs energy difference between the transition state and the two reactants at temperature T and the standard state..

For the bi- and tri-molecular reactions, we have learned that the reaction rate constants should be s^(-1)M^(-1) and s^(-1)M^(-2). Why? And how can we still use the Eyring equation to obtain the reaction rate constant given the Gibbs energy of activation?

Note that delta G refers to the difference between the STANDARD Gibbs energy of the transitions state (TS) and that of the reactant(s). The STANDARD state for gases is 1 bar!

Therefore, the Eyring equation can still be used to calculate the rate constant k for the bi- and tri-molecular reactions as long as we use PRESSURE/(1 bar) consistently in the expression of the reaction rate.

For example, A + B -> C

Reaction rate = d[P(C)/1 bar)]/dt = -d[P(A)/1 bar)]/dt = -d[P(B)/1 bar)]/dt = k[P(A)/1 bar)][P(B)/1 bar)]

Note that [P(A)/1 bar)], [P(B)/1 bar)], [P(C)/1 bar)] are unit-less. Pressures are divided by 1 bar because the delta G are usually determined at 1 bar. GAMESS calculations also give the values of delta G at 1 bar by default.

Therefore, we can see the left-hand-side (lhs) of the equation is in s^(-1) and so is the rhs.

d[P(C)/1 bar)]/dt = k[P(A)/1 bar)][P(B)/1 bar)]

What if the users of the above equation prefer to use M (mol/L)?
 Again, we can simply derive the equation in terms of concentrations.

d[P(C)/1 bar)]/dt = k[P(A)/1 bar)][P(B)/1 bar)]

d([C]RT/1 bar)/dt = k ([A]RT/1 bar) ([B]RT/1 bar)

 d([C])/dt = k(RT/1 bar) [A] [B]

Therefore the rate constant of a bi-molecular reaction becomes the product of 3 terms:
 the rate constant in s^(-1)M^(-1) = (kBT/h) e^(-delta G/RT) (RT/1 bar)

For a tri-molecular reaction, the rate constant = (kBT/h) e^(-delta G/RT) (RT/1 bar)^2 

Note that many rate constants of bi-molecular reactions are in the units of (s, cm, molecule),
We simply need to find the value of (RT/1 bar) in (s, cm, molecule)
 
For example, at 298.15K,
(RT/1 bar) = (8.3145 * 298.15) / 100000 = 0.024790 m^3/mol = 4.1164 * 10^(-20) cm^3/molecule

T(K) kB T/p (cm^3/molecule) 100 1.38065E-20 200 2.76130E-20 298.15 4.11641E-20 300 4.14195E-20 400 5.52260E-20 500 6.90325E-20 600 8.28390E-20 700 9.66455E-20 800 1.10452E-19 900 1.24259E-19 1000 1.38065E-19 1100 1.51872E-19 1200 1.65678E-19 1300 1.79485E-19 1400 1.93291E-19 1500 2.07098E-19 1600 2.20904E-19 1700 2.34711E-19 1800 2.48517E-19 1900 2.62324E-19 2000 2.76130E-19 2100 2.89937E-19 2200 3.03743E-19 2300 3.17550E-19 2400 3.31356E-19 2500 3.45163E-19