The `e.m.f.` of a cell corresponding to the reaction : `Zn_((s))+2H_((aq.))^(+) rarr underset((0.1 M))(Zn^(2+))+underset((1 atm))(H_(2(g))` is `0.28 V` at `25^(@)C` and `E_(Zn//Zn^(2+))^(@) = 0.76V`. (i) Write half cell reactions. (ii) Calculate `pH` of the solution at `H` electrode.

The `e.m.f.` of a cell corresponding to the reaction : `Zn_((s))+2H_((

1.	The `e.m.f.` of a cell corresponding to the reaction : `Zn_((s))+2H_((aq.))^(+) rarr underset((0.1 M))(Zn^(2+))+underset((1 atm))(H_(2(g))` is `0.28 V` at `25^(@)C` and `E_(Zn//Zn^(2+))^(@) = 0.76V`. (i) Write half cell reactions. (ii) Calculate `pH` of the solution at `H` electrode.
Answer» (i) Anode: `Zn rarr Zn^(2+)+2e` Cathode: `2H^(+)+2e rarr H_(2)` (ii) `E_(cell) = E_(OP_(Zn))^(@) - (0.059)/(2)"log"[Zn^(2+)]+E_(RP)^(@)` `-(0.059)/(2)"log"([H^(+)]^(2))/(P_(H_(2)))` or `E_(cell) = E_(OP_(Zn))^(@) + 0 +(0.059)/(2)"log"([H^(+)]^(2))/(P_(H_(2)) xx [Zn^(2+)])` `= 0.28 = 0.76 + (0.059)/(2)"log"([H^(+)]^(2))/(0.1 xx 1)` or `([H^(+)]^(2))/(1) = - (0.48 xx 2)/(0.059) = -16.271` `([H^(+)]^(2))/(1) = 5.3556 xx 10^(-17)` or `[H^(+)] = 2.3142 xx 10^(-9)` `:. pH = -log[H^(+)] = 8.635`

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The `e.m.f.` of a cell corresponding to the reaction : `Zn_((s))+2H_((aq.))^(+) rarr underset((0.1 M))(Zn^(2+))+underset((1 atm))(H_(2(g))` is `0.28 V` at `25^(@)C` and `E_(Zn//Zn^(2+))^(@) = 0.76V`. (i) Write half cell reactions. (ii) Calculate `pH` of the solution at `H` electrode.

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