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⏱️ Chemical Kinetics & Catalysis

Chemical kinetics uncovers the reaction pathway, transition states, and molecularity behind thermodynamic transformations. Key competitive exam challenges include Steady State Approximation (SSA), parallel and consecutive rate differentials, Arrhenius graph slopes, and pseudo-first order kinetics.


1. 📈 Rate Laws & Integrated Rate Equations

1.1 Comparison of Reaction Orders

Reaction Order (n)Differential Rate LawIntegrated Rate EquationHalf-Life (t1/2)Units of Rate Constant kLinear Plot
0d[A]dt=k[A]t=[A]0ktt1/2=[A]02kmolL1s1[A]t vs t (slope =k)
1d[A]dt=k[A]ln([A]0[A]t)=kt[A]t=[A]0ektt1/2=ln2k=0.693ks1ln[A]t vs t (slope =k)
2d[A]dt=k[A]21[A]t1[A]0=ktt1/2=1k[A]0Lmol1s11[A]t vs t (slope =+k)
nd[A]dt=k[A]n1n1(1[A]tn11[A]0n1)=ktt1/21[A]0n1(mol/L)1ns1[A]t1n vs t

Powerful First-Order Shortcuts

  • t75%=2×t50%
  • t87.5%=3×t50%
  • t99%=2ln10ln2t50%2×2.3030.693t50%6.64×t50%
  • t99.9%=10×t50%

2. 🧩 Complex Reaction Mechanisms & Steady State Approximation

2.1 Parallel / Competing Reactions

Ak1BandAk2Cd[A]dt=(k1+k2)[A]keffective=k1+k2Product Ratio: [B]t[C]t=k1k2at all times tFraction of Product B=k1k1+k2×100%Overall Activation Energy: Ea,eff=k1Ea1+k2Ea2k1+k2

2.2 Consecutive / Sequential Reactions

Ak1Bk2C[A]t=[A]0ek1t[B]t=[A]0k1k2k1(ek1tek2t)
  • Time for Maximum Concentration of Intermediate B:tmax=ln(k1/k2)k1k2=2.303log(k1/k2)k1k2
  • Maximum Concentration of B:[B]max=[A]0(k2k1)k2k1k2

3. 🌡️ Temperature Dependence: Arrhenius Equation

k=AeEa/(RT)lnk=lnAEaR(1T)log10k=log10AEa2.303R(1T)ln(k2k1)=EaR(1T11T2)=Ea(T2T1)RT1T2
  • Slope of lnk vs 1T: EaR
  • Slope of log10k vs 1T: Ea2.303R
  • y-intercept: lnA (or log10A)
  • Catalyst Effect: Lowers activation energy Ea to Ea:kcatkuncat=exp(EaEaRT)