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प्रश्न
The decomposition of formic acid on gold surface follows first order kinetics. If the rate constant at 300 K is 1.0 × 10−3 s−1 and the activation energy Ea = 11.488 kJ mol−1, the rate constant at 200 K is ______ × 10−5 s−1 (Round off to the nearest integer) (Given R = 8.314 JK−1 mol−1).
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उत्तर
The decomposition of formic acid on gold surface follows first order kinetics. If the rate constant at 300 K is 1.0 × 10−3 s−1 and the activation energy Ea = 11.488 kJ mol−1, the rate constant at 200 K is 10 × 10−5 s−1.
Explanation:
Given: k1 = 1.0 × 10−3 s−1 at T1 = 300 K
T2 = 200 K
Ea = 11.488 kJ mol−1
R = 8.314 J K−1mol−1
`log k_2/k_1 = E_a/(2.303 R) (1/T_1 - 1/T_2)`
`log k_2/10^-3 = 11488/(2.303 xx 8.314) (1/300 - 1/200)`
= `11488/19.15 (1/300 - 1/200)`
= `600 xx ((2 - 3)/600)`
= `600 xx (-1/600)`
= 600 × 0.0016
= −0.96
`log k_2/10^-3 = -1`
⇒ `k_2/10^-3 = 10^-1`
⇒ k2 = 10−1 × 10−3
k2 = 10−4
⇒ k2 = 10 × 10−5 s−1
∴ The rate constant at 200 K is 10 × 10−5 s−1
So, the required value of x = 10.
