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Q.v. The rate constant of a reaction at 5000^0C is 1.6 ×\times 103^3 M−1^{-1}s−1^{-1}. What is the frequency factor of the reaction if its activation energy is 56 kJ/mol. (9.72 ×\times 106^6 M−1^{-1}s−1^{-1})

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Step 1. k = 1.6x10^3 M-1 s-1 at T = 500°C = 773 K; Ea = 56000 J/mol; R = 8.314 J/K/mol.

Step 2. From k=Ae−Ea/RTk=Ae^{-E_a/RT}: A=k eEa/RT=1.6×103×e56000/(8.314×773)=1.6×103×e56000/6426.7=1.6×103×e8.714A=k\,e^{E_a/RT}=1.6\times10^3\times e^{56000/(8.314\times773)}=1.6\times10^3\times e^{56000/6426.7}=1.6\times10^3\times e^{8.714}.

Step 3. e8.714≈6088e^{8.714}\approx6088. …

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