The `[H^(+)]` of 0.10 `MH_(2)S` solution is (given `K_(1)=1.0 xx 10^(-7) , K_(2)=1.0 xx 10^(-14))`A. `1.0 xx 10^(-7)M`B. `1.0 xx 10^(-4)M`C. `1.0 x 10^(-8)M`D. `1.0 xx 10^(-22)M`

The `[H^(+)]` of 0.10 `MH_(2)S` solution is (given `K_(1)=1.0 xx 10^(-

1.	The `[H^(+)]` of 0.10 `MH_(2)S` solution is (given `K_(1)=1.0 xx 10^(-7) , K_(2)=1.0 xx 10^(-14))`A. `1.0 xx 10^(-7)M`B. `1.0 xx 10^(-4)M`C. `1.0 x 10^(-8)M`D. `1.0 xx 10^(-22)M`
Answer» Correct Answer - B As `K_(2) lt lt lt lt K_(1)` most of the `H^(+)` ions results from primary ionisation `H_(2)S hArr H^(+)+HS^(-)` Let `x=[H^(+)]=[HS^(-)]` `[H_(2)S]=1.0 -x=1.0 mol L^(-1)` ( Since x is very small ) `K_(1)=([H^(+)][HS^(-)])/([H_(2)S])` or `1.0 xx 10^(-7)=(x^(2))/(0.10)=1.0 xx 10^(-4)M` `[H^(+)]=x mol L^(-1)` `x=1.0 xx 10^(-4)`

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The `[H^(+)]` of 0.10 `MH_(2)S` solution is (given `K_(1)=1.0 xx 10^(-7) , K_(2)=1.0 xx 10^(-14))`A. `1.0 xx 10^(-7)M`B. `1.0 xx 10^(-4)M`C. `1.0 x 10^(-8)M`D. `1.0 xx 10^(-22)M`

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