Q.The rate of a reaction doubles when temperature changes from to . Calculate energy of activation for the reaction. ( J ) (Given: log 2 = 0.3010, log 3 = 0.4771, log 4 = 0.6021)
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Start your 14-day free trial to unlock the full solution →Using the Arrhenius equation in its logarithmic form, the activation energy is found from the ratio of rate constants at two temperatures. Here, , K, K, and J K⁻¹ mol⁻¹. The calculation gives J mol⁻¹, or 53.6 kJ mol⁻¹.
The Arrhenius equation tells us how the rate constant depends on temperature:
where is the pre-exponential factor, the activation energy, the gas constant, and the absolute temperature. When you take the ratio of at two different temperatures, the cancels out — that’s the key. The problem gives you that the rate doubles when the temperature rises from C to C. Since rate is directly proportional to (for a fixed concentration), this means .
The natural next step is to use the logarithmic form of the Arrhenius equation, which linearises the relationship and lets you solve for directly.
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Convert temperatures to Kelvin.
Always work in absolute temperature for the Arrhenius equation.
K
K
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Write the ratio form of the Arrhenius equation.
A more convenient version (check the sign carefully) is:
This form uses base-10 logs, which matches the given log values.
A common mistake is to swap and inside the bracket. Since , is positive — and must come out positive. If you get a negative , you’ve reversed the temperatures.
- Plug in the known values. , so . J K⁻¹ mol⁻¹.
- Simplify the temperature difference.
So the bracket equals K⁻¹.
- Solve for . …
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