In which case (E_("cell")-E_("cell")^(@)) is zero – InterviewSolution

1.	In which case (E_("cell")-E_("cell")^(@)) is zero
Answer» `CU\|Cu^(2+)(0.01 M)\|\|Ag^(+)(0.1 M)\|Ag` `Pt(H_(2))\|pH=1\|\|Zn^(2+)(0.01 M)\|Zn` `Pt(H_(2))\|pH=1\|\|Zn^(2+)(1 M)\|Zn` `Pt(H_(2))\|H^(+)=0.01 M)\|\|Zn^(2+)(0.01 M)\|Zn` Solution :(a,b) are correct. (a) `E_(cell)=E_(cell)^(@)-(2.303" RT")/(2F)"log"([Cu^(2+)])/([Ag^(+)]^(2))` `E_(cell)-E_(cell)^(@)=(2.303" RT")/(2F)"log"(0.01)/((0.1)^(2))` `E_(cell)-E_(cell)^(@)=0` (b) `E_(cell)-E_(cell)^(@)=-(2.303" RT")/(2F)"log"([H^(+)]^(2))/([Zn^(2+)])` `E_(cell)-E_(cell)^(@)=-(2.303" RT")/(2F)"log"((1xx10^(-1))^(2))/((0.01))=0` (C ) `E_(cell)-E_(cell)^(@)=-(2.303" RT")/(2F)"log"([H^(+)]^(2))/([Zn^(2+)])` `=-(2.3030" RT")/(2F)"log"((1xx10^(-1))^(2))/(1)ne 0` (d) `E_(cell)-E_(cell)^(@)=-(2.303" RT")/(2F)"log"([H^(+)]^(2))/([Zn^(2+)])` `=-(2.303" RT")/(2F)"log"((0.1)^(2))/((0.01))ne0`

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