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Question
The cell potential for the following cell:
\[\ce{Pt | H2_{(g)} | H{^+_{(aq)}} || Cu^+2 (0.01 M) | Cu}\] is 0.576 at 298 K.
The pH of the solution is ______. (Nearest integer)
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Solution
The pH of the solution is 5.
Explanation:
The given cell is \[\ce{Pt | H2_{(g)} | H{^+_{(aq)}} || Cu^+2 (0.01 M) | Cu}\]
Ecell = 0.576 V
T = 298 K
Where \[\ce{E^{\circ}_{cell}}\] = 0.34 V
Cu2+ = 0.01
n = 2
Use the Nernst equation:
\[\ce{E = E{^{\circ}_{cell}} - \frac{0.0591}{n} log \frac{[H^{+}]^2}{[Cu^{2+}]}}\]
\[\ce{0.576 = 0.34 - \frac{0.0591}{2} log \frac{[H^{+}]^2}{0.01}}\]
\[\ce{0.576 - 0.34 = -0.02955 log \frac{[H^{+}]^2}{0.01}}\]
\[\ce{0.236 = -0.02955 log \frac{[H^{+}]^2}{0.01}}\]
Divide both sides
\[\ce{log \frac{[H^{+}]^2}{0.01} = -7.986}\]
\[\ce{log \frac{[H^{+}]^2}{0.01}}\] ≈ −8.0
So
\[\ce{log \frac{[H^{+}]^2}{0.01} = 10^8}\]
[H+]2 = 10−10
[H+] = 10−5
pH = −log[H+]
= −log(10−5)
= 5
