Which has maximum potential for the half cell reaction: 2H^(+)+2e^(-)t – InterviewSolution

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1.	Which has maximum potential for the half cell reaction: 2H^(+)+2e^(-)toH_(2)?
Answer» `1.0M` HCL `1.0` M NaOH Pure water A solution with pH=4 Solution :For `2H^(+)+2e^(-)toH_(2)`, `E=E^(@)-(0.0591)/(2)"log"(1)/([H^(+)]^(2))=0+(0.0591)/(2)log[H^(+)]^(2)` `=0.591log[H^(+)]=-0.0591pH` (a) `[H^(+)]=1M,E=0.0591log1=0` (B) `[OH^(-)]=10^(0),[H^(+)]=10^(-14)=-0.827V` `E=-0.0591xx14=-0.827V` (c) `[H^(+)]=10^(-7),pH=7,E=-0.0591xx7` `=0.413`V (d) pH=4,E=-0.0591`xx4=0.236V`. Thus, potential E is MAXIMUM for 1 M HCl.

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