Consider the cell `AG|AgBr(s)|Br^(-)||AgCI(s)|CI^(-)|Ag` at `25^(@)C`. The solubility product constants of `AgBr & AgCI` are respectively `5 xx 10^(-13) & 1 xx 10^(-10)`. For what ratio of the concentration of `Br^(-) & CI^(-)` ions would the emf of the cell be zero?

Consider the cell `AG|AgBr(s)|Br^(-)||AgCI(s)|CI^(-)|Ag` at `25^(@)C`.

1.	Consider the cell `AG\|AgBr(s)\|Br^(-)\|\|AgCI(s)\|CI^(-)\|Ag` at `25^(@)C`. The solubility product constants of `AgBr & AgCI` are respectively `5 xx 10^(-13) & 1 xx 10^(-10)`. For what ratio of the concentration of `Br^(-) & CI^(-)` ions would the emf of the cell be zero?
Answer» Correct Answer - `[Br]: [CI] = 1:200` `Ag\|AgBr_((s)) \|AgCI_((s)) \|CI^(-)\|Ag` `E_(cell) =(0.0591)/(1)log. ([Ag^(+)]_(R.H.S))/([Ag^(+)]_(L.H.S))` For `L.H.S`. `K_(sp) of AgBr = 5 xx 10^(-13)` `[Ag^(+)] [Br^(-)] = 5 xx 10^(-13)` ltbr? `[Ag^(+)]_(L.H.S) = (5 xx 10^(-13))/([Br^(-)])` One for `R.H.S` `[Ag^(+)] [CI^(-)] = K_(sp) of AgCI` `[Ag^(+)]_(R.H.S) = (10^(-10))/([CI^(-1)])` `10^(@) = (\|Br^(-)\|xx10^(10))/(\|CI^(-)\|xx5 xx 10^(-13))` `(\|Br^(-)\|)/(\|CI^(-)\|) =(5)/(10^(3)) = (1)/(200)`

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Consider the cell `AG|AgBr(s)|Br^(-)||AgCI(s)|CI^(-)|Ag` at `25^(@)C`. The solubility product constants of `AgBr & AgCI` are respectively `5 xx 10^(-13) & 1 xx 10^(-10)`. For what ratio of the concentration of `Br^(-) & CI^(-)` ions would the emf of the cell be zero?

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