Calculate the emf of the concentration cell at 298K. Pt(s)|H2(g,p1)|HCl(aq)|H2(g,p2)|Pt(s)
p1=600torrp2=400torr
Take: log32=0.176
A
0.005V
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B
0.025V
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C
0.15V
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D
1.02V
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Solution
The correct option is A0.005V From the cell representation,
Anode reaction: H2(p1)→2H++2e−
Cathode reaction: 2H++2e−→H2(p2)
Thus, the cell reaction is H2(p1)→H2(p2)
By Nernst equation, Ecell=E0cell−0.05912logp2p1 E0cell=0 Ecell=−0.05912logp2p1