Under the same reaction conditions, the intial concentration of `1.386 mol dm^(-3)` of a substance becomes half in `40 s` and `20 s` theough first order and zero order kinetics, respectively. The ratio `(k_(1)//k_(0))` of the rate constants for first order `(k_(1))` and zero order `(k_(0))` of the reaction isA. (a) `0.5 mol^(-1) dm^(3)`B. (b) `1.0 mol dm^(-3)`C. (c ) `1.5 mol dm^(-3)`D. (d) `2.0 mol^(-1) dm^(3)`

Under the same reaction conditions, the intial concentration of `1.386

1.	Under the same reaction conditions, the intial concentration of `1.386 mol dm^(-3)` of a substance becomes half in `40 s` and `20 s` theough first order and zero order kinetics, respectively. The ratio `(k_(1)//k_(0))` of the rate constants for first order `(k_(1))` and zero order `(k_(0))` of the reaction isA. (a) `0.5 mol^(-1) dm^(3)`B. (b) `1.0 mol dm^(-3)`C. (c ) `1.5 mol dm^(-3)`D. (d) `2.0 mol^(-1) dm^(3)`
Answer» Correct Answer - a For first order reaction, `K=2.303/t_(1//2)"log"a/(0.5a)` `=2.303/t_(1//2)log_(10)2=0.693/t_(1//2)` `:. t_(1//2)=0.693/K`, `:. K_(1)=0.693/t_(1//2)=0.693/40` for zero order reaction, `:. K_(0)=A_(0)/(2xxt_(1//2))=1.386/(2xx20)` Now, `K_(1)/K_(0)=0.693/40xx40/1.386=0.5 mol^(-1) dm^(3)`

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