How to Calculate Activation Energy with Two Rate Constants

Activation Energy Calculator

Kelvin (K) Celsius (°C)

Kelvin (K) Celsius (°C)

How to Calculate Activation Energy with Two Rate Constants

In chemical kinetics, determining the activation energy (Eₐ) is crucial for understanding how temperature affects the speed of a chemical reaction. The activation energy represents the minimum energy barrier that reacting molecules must overcome to form products. By measuring the rate constants of a reaction at two different temperatures, we can utilize the Arrhenius Equation to calculate this energy barrier precisely.

The Arrhenius Equation Formula

The standard Arrhenius equation describes the relationship between the rate constant ($k$), the absolute temperature ($T$), and the activation energy ($E_a$). When we have data points for two different conditions ($T_1, k_1$ and $T_2, k_2$), the two-point form of the equation is used:

ln(k₂ / k₁) = – (Eₐ / R) * (1/T₂ – 1/T₁)

Where:

• k₁ & k₂: The reaction rate constants at temperatures T₁ and T₂.
• T₁ & T₂: The absolute temperatures in Kelvin (K).
• Eₐ: The activation energy (usually in Joules per mole, J/mol).
• R: The universal gas constant (8.314 J/(mol·K)).

Step-by-Step Calculation Logic

To solve for Activation Energy ($E_a$), we rearrange the formula:

1. Convert Temperatures: Ensure all temperatures are in Kelvin. If your data is in Celsius, add 273.15 ($K = ^\circ C + 273.15$).
2. Calculate the Natural Log: Find the natural logarithm of the ratio of the rate constants: $\ln(k_2 / k_1)$.
3. Calculate the Inverse Temperature Difference: Calculate $(1/T_2 – 1/T_1)$. Note that if $T_2 > T_1$, this value will be negative.
4. Solve for Eₐ:
   $E_a = \frac{-R * \ln(k_2 / k_1)}{(1/T_2 – 1/T_1)}$

Example Calculation

Let's assume a decomposition reaction has a rate constant of 2.5 × 10⁻⁴ s⁻¹ at 300 K and 8.0 × 10⁻⁴ s⁻¹ at 320 K.

• $k_1 = 0.00025$, $T_1 = 300 K$
• $k_2 = 0.0008$, $T_2 = 320 K$
• Gas Constant $R = 8.314$

First, $\ln(k_2/k_1) = \ln(3.2) \approx 1.163$.

Next, $(1/320 – 1/300) = 0.003125 – 0.003333 = -0.0002083$.

Finally, $E_a = \frac{-8.314 \times 1.163}{-0.0002083} \approx 46,415 \text{ J/mol}$ or **46.4 kJ/mol**.

Why is this important?

Understanding activation energy allows chemists and engineers to predict reaction rates at any unmeasured temperature. It is fundamental in designing chemical reactors, preserving food (slowing spoilage reactions), and formulating pharmaceuticals where stability at different temperatures is critical.