Chemical Kinetics

Chemistry · Class 12

Simulation · Chemistry · Class 12

Is a hard enough collision always enough?

From the lesson Collision theory in Chemical Kinetics. Change the values and watch what happens.

Is a hard enough collision always enough?Chemistry · Class 12

The idea behind it

NCERT §3.5

  • Collision theory (Max Trautz and William Lewis, 1916-18) treats molecules as hard spheres and says a reaction happens only when molecules collide.
  • Collision frequency Z counts how many collisions happen each second in a unit volume of the reacting mixture.
  • Only collisions carrying at least a threshold energy can succeed. Threshold energy = activation energy + energy the molecules already have.
  • For A + B → products, rate = Z_AB e^(−Ea/RT), where e^(−Ea/RT) is the fraction of collisions energetic enough to react. This mirrors the Arrhenius equation, with Z_AB in the role of A.
  • Proper orientation is also needed: for the formation of methanol from bromomethane and OH⁻, the OH⁻ must approach the carbon on the side away from bromine, or the collision fails even with enough energy.
  • Energy and orientation together make an effective collision. Adding a probability (steric) factor P gives rate = P Z_AB e^(−Ea/RT).
  • The theory's weakness is its hard-sphere picture of atoms and molecules; it ignores their structure, which is why P is needed at all.