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Q.The First order rate constant for the decomposition of Ethyl Iodide by reaction C2H5I(g) -> C2H4(g) + HI(g) at 600K is 1.60 x 10^-5 S-1. Its energy of Activation is 209 KJ/mol. Calculate the rate constant of the reaction at 700 K.

Gujarat GsebGSEB Higher Secondary Certificate (HSC) Examination 2025Subjective· 3mImportance★★★★★
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Using the two-temperature form of the Arrhenius equation with the given Ea, k1 and T1, solve for k2 at the new temperature T2.

Arrhenius equation (two-temperature form):

ln(k2/k1) = (Ea/R) x (1/T1 - 1/T2)

Given: k1 = 1.60 x 10^-5 s-1 at T1 = 600 K, Ea = 209 kJ/mol = 209000 J/mol, R = 8.314 J K-1 mol-1, T2 = 700 K.

Compute (1/T1 - 1/T2):

1/600 - 1/700 = (700 - 600) / (600 x 700) = 100 / 420000 = 2.381 x 10^-4 K-1

Compute Ea/R:

209000 / 8.314 = 25139.3 K

So: …

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