Chemistry · Ch 3 — Chemical Kinetics
Summary
Summary
-
Rate of Reaction: Defined as change in concentration per unit time:
for .
Average rate over an interval; instantaneous rate from slope of tangent.
-
Rate Law & Order: ; = overall order (determined experimentally, not from stoichiometry).
= rate constant, units depend on order.
-
Integrated Rate Equations:
- Zero order: ; half-life .
- First order: ; (independent of initial concentration).
- Second order (single reactant): ; .
-
Pseudo-First Order: When one reactant is in large excess, order reduces to first (e.g., hydrolysis of ester in excess water).
-
Arrhenius Equation: ;
.
= activation energy, = frequency factor.
Plot vs gives straight line with slope .
-
Effect of Temperature: Rate constant increases with ; a C rise roughly doubles for many reactions.
-
Collision Theory: Molecules must collide with sufficient energy () and proper orientation.
Fraction of effective collisions .
-
Molecularity: Number of molecules colliding in an elementary step (1, 2, or 3). Always a whole number; order may be fractional or zero. …