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Question
The slope of the line in the graph of log k (k = rate constant) versus `1/T` for a reaction is −5400 K. Calculate the energy of activation for this reaction. (R = 8.314 J K−1 mol−1).
Numerical
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Solution
Given:
Slope of the graph of log k vs `1/T` = –5400 K
R = 8.314 J K−1 mol−1
Use the Arrhenius equation in logarithmic form:
`log k = log A - E_a/(2.303 R) * 1/T`
This is in the form y = mx + c, where:
slope m = `- E_a/(2.303 R)`
⇒ `-5400 = -E_a/(2.303 * 8.314)`
∴ Ea = 5400 × 2.303 × 8.314
= 5400 × 19.147
= 103,393.8 J/mol
≈ 103.4 kJ/mol
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