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Calculate for the Electrochemical Cell Below,
Ag(s)| AgCl(s)| Cl-(aq,1 \to

Question 14

Multiple Choice

Calculate  Calculate   for the electrochemical cell below, Ag(s) | AgCl(s) | Cl<sup>-</sup>(aq,1.0 M) || Cu<sup>2+</sup>(aq,1.0 M) | Cu(s)  Given the following standard reduction potentials.  Cu<sup>2+</sup>(aq) + 2 e<sup>-</sup>  \to  Cu(s)  ~~~~~~~~~~~~~~~~ E<sup> \circ </sup>= +0.337 V AgCl(s) + e<sup>-</sup>  \to Ag(s) + Cl<sup>-</sup>(aq)  ~~~~~~~~ E<sup> \circ </sup> = +0.222 V A)  -0.115 V B)  -0.107 V C)  +0.115 V D)  +0.452 V E)  +0.559 V for the electrochemical cell below,
Ag(s) | AgCl(s) | Cl-(aq,1.0 M) || Cu2+(aq,1.0 M) | Cu(s)
Given the following standard reduction potentials.

Cu2+(aq) + 2 e- \to Cu(s)         ~~~~~~~~        ~~~~~~~~ E \circ = +0.337 V
AgCl(s) + e- \to Ag(s) + Cl-(aq)         ~~~~~~~~ E \circ = +0.222 V


A) -0.115 V
B) -0.107 V
C) +0.115 V
D) +0.452 V
E) +0.559 V

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