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The reaction between A and B is first order with respect to A and zero order with respect to B. Fill in the blanks in the following table : |
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Answer» Solution :The RATE expression will be : `""` Rate `=K[A]^(1)[B]^(0)=k[A]` From experiment I,`""2.0xx10^(-2)"mol L"^(-1)"min"^(-1)= k(0.1m) or k=0.2 "min"^(-1)` From experiment II, `""4.0xx10^(-2)"mol"^(-1)L^(-1)"min"^(-1)=(0.2 "min"^(-1))[A] or [A]=0.2 "mol L"^(-1)` From experiment III, `"Rate"=(0.2"min"^(-1))(0.4"mol L"^(-1)) or " Rate"=0.08"mol L"^(-1)"min"^(-1)` From Experiment IV, `""2.0xx10^(-2)"mol L"^(-1) "min"^(-1)=0.2"min"^(-1)[A] or [A]-0.1"mol L"^(-1)` |
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