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⚡ Reaction Rates

Collision theory — temperature, concentration, and activation energy affect reaction speed

300 K
30
50 kJ
Collisions: 0
Reactions: 0
Rate: 0/s
Ea (eff): 50 kJ
k (Arrhenius):

Collision Theory

For a reaction to occur, molecules must collide with sufficient energy (≥ activation energy Eₐ) and proper orientation. Higher temperature means faster molecules → more collisions above Eₐ. Higher concentration → more frequent collisions. A catalyst lowers Eₐ, allowing more collisions to succeed without being used up.