For the reaction [Cu(NH(3))(4)]^(2+) +...

For the reaction
`[Cu(NH_(3))_(4)]^(2+) + H_(2) O [ Cu ( NH_(3))_(3) H_(2) O ] ^(2+ ) + NH_(3)`
Net rate is
`((dx)/(dt)) = 2.0 xx 10^(-4) s^(-1) [[ Cu (NH_(3))_(4) ]^(2+) ] - 3.0 xx 10^(5) L mol^(-1) s^(_1) [[ Cu ( NH_(3))_(3) H_(2) O ] (NH_(3))]`
Ratio of rate constant of the forward and backward reactions is

`0.66 xx 10^(-9) mol L^(-1)`

`1.5 xx 10^(-9) mol L^(-1)`

`2.0 xx 10^(-4) s^(-1)`

`3.0 xx 10^(5) L mol^(-1) s^(-1)`

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The shape of [Cu(NH_(3))_(4)]^(2+) is

For the reaction: [Cu(NH_(3))_(4)]^(2+) + H_(2)O hArr [Cu(NH_(3))_(3)H_(2)O]^(2+)+NH_(3) The net rate of reaction at any time is given net by: rate =2.0xx10^(-4) [[Cu(NH_(3))_(4)]^(2+)][H_(2)O]-3.0xx10^(5) [[Cu(NH_(3))_(3)H_(2)O]^(2+][NH_(3)] Then correct statement is (are) :

The net rate of reaction of the change : [Cu(NH_(3))_(4)]^(2+)+H_(2)O ?" "[Cu(NH_(3))_(3)H_(2)P]^(2+)+NH_(3) is, (dx)/(dt) =2.0xx10^(-4)[Cu(NH_(3))_(4)]^(2+)-3.0xx10^(5)[Cu(NH_(3))_(3)H_(2)O]^(2+)[NH_(3)] Calculate : rate expression for forward and backward reactions.

NH_(3) and H_(2)O form NH_(4)OH by

CuSO_(4)+NH_(3)(excess) to [Cu(NH_(3))_(4)]^(2+)

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