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Answer the following · Q5

Q.v. Calculate emf of the cell Zn(s)∣\vertZn2+^{2+}(0.2M)∥\VertH+^+(1.6M)∣\vertH2_2(g, 1.8 atm)∣\vertPt at 250^0C. (0.785V)

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Step 1. Cell reaction: Zn(s)+2H+(aq)→Zn2+(aq)+H2(g)Zn(s)+2H^+(aq)\rightarrow Zn^{2+}(aq)+H_2(g), with n=2n=2.

Step 2. Ecell0=EH20−EZn0=0−(−0.76)=0.76 VE^0_{cell}=E^0_{H_2}-E^0_{Zn}=0-(-0.76)=0.76\,V.

Step 3. By the Nernst equation, Ecell=Ecell0−0.05922log⁡10[Zn2+]×PH2[H+]2=0.76−0.0296log⁡100.2×1.8(1.6)2E_{cell}=E^0_{cell}-\dfrac{0.0592}{2}\log_{10}\dfrac{[Zn^{2+}]\times P_{H_2}}{[H^+]^2}=0.76-0.0296\log_{10}\dfrac{0.2\times1.8}{(1.6)^2}. …

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