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प्रश्न
The rate constant of a reaction quadruples when the temperature changes from 300 K to 320 K. Calculate the activation energy for this reaction.
[log 2 = 0.30, log 4 = 0.60, 2.303 R = 19.15 JK−1mol−1]
संख्यात्मक
उत्तर
Given: T1 = 300 K, T2 = 320 K, `k_2/k_1` = 4
R = 8.314 JK−1 mol−1, log 4 = 0.60
By Arrhenius's equation,
`log k_2/k_1 = E_a/(2.303 xx R) (1/T_1 - 1/T_2)`
`log 4 = E_a/(2.303 xx 8.314)[1/300 - 1/320]`
`E_a = log 4 xx 2.303 xx 8.314 xx 320 xx 300/20`
`E_a = 0.60 xx 2.303 xx 8.314 xx 300 xx 320/20`
Ea = 55152 J/mol
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