The rate constant `k_(1)` and `k_(2)` for two different reactions are `10^(16) e^(-2000//T)` and `10^(15) e^(-1000//T)`, respectively. The temperature at which `k_(1) = k_(2)` isA. 2000 KB. `1000//2.303K`C. 1000 KD. `2000//2.303K`

The rate constant `k_(1)` and `k_(2)` for two different reactions are

1.	The rate constant `k_(1)` and `k_(2)` for two different reactions are `10^(16) e^(-2000//T)` and `10^(15) e^(-1000//T)`, respectively. The temperature at which `k_(1) = k_(2)` isA. 2000 KB. `1000//2.303K`C. 1000 KD. `2000//2.303K`
Answer» Correct Answer - B `k_(1)=10^(16)e^(-2000//T)` `k_(2)=10^(15)e^(-1000//T)` The temperature at which `k_(1)=k_(2)` will be `10^(16)e^(-2000//T)=10^(15)e^(-1000//T)` `(e^(-2000//T))/(e^(-1000//T))=(10^(15))/(10^(16))` `e^(-1000//T)=10^(-1)` `log_(e)e^(-1000//T)=log_(e)10^(-1)` `2.303xxlog_(10)E^(-1000//T)=2.303xxlog_(10)10^(-1)` `(-1000)/(T)xxlog_(10)e=-1` On solving, we get `T=1000//2,303K`

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The rate constant `k_(1)` and `k_(2)` for two different reactions are `10^(16) e^(-2000//T)` and `10^(15) e^(-1000//T)`, respectively. The temperature at which `k_(1) = k_(2)` isA. 2000 KB. `1000//2.303K`C. 1000 KD. `2000//2.303K`

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