⚗️ Reaction Kinetics 2D — A → B → C

Reversible B → A
⚡ Catalyst (lowers Ea by 30%)
[A] concentration1.000
[B] concentration0.000
[C] concentration0.000
k₁ (A→B) s⁻¹—
k₂ (B→C) s⁻¹—
Half-life t½—
Rate law: r = k[A]m[B]n. In consecutive mode k comes from the Arrhenius equation k = A·e−Ea/RT (R = 8.314 J/mol·K); in simple mode k is set directly and dA/dt = −k·An. Half-life for first order is ln(2)/k; for zero order it is A₀/2k; for second order it is 1/(k·A₀).