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Question
The activation energy of a reaction is 22.5 k Cal mol−1 and the value of rate constant at 40°C is 1.8 × 10−5 s−1. Calculate the frequency factor, A.
Numerical
Solution
Here, we are given that
Ea = 22.5 kcal mol−1 = 22500 cal mol−1
T = 40°C = 40 + 273 = 313 K
k = 1.8 × 10−5 sec−1
Substituting the values in the equation
log A = `log "K" + (("E"_"a")/(2.303 "RT"))`
log A = `log (1.8 xx 10^-5) + ((22500)/(2.303 xx 1.987 xx 313))`
log A = `log (1.8) - 5 + (15.7089)`
log A = 10.9642
A = antilog ( 10.9642)
A = 9.208 × 1010 collisions s−1
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