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Consider a Voltaic Cell Made from the Following Redox Reaction

question 108

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Consider a voltaic cell made from the following redox reaction:
Mn (s) + Pb 2+ (aq) Consider a voltaic cell made from the following redox reaction: Mn (s)  + Pb 2+ (aq)    Mn 2+ (aq)  + Pb (s)  E cell = 1.15 V What is the value of E cell at 298 K under non-standard conditions when Pb 2+ = 1.5 10 - 4 M and Mn 2+ = 4.5 10 - 2 M? A)  E <sub>cell</sub> = 1.00 V B)  E <sub>cell</sub> = 1.08 V C)  E <sub>cell</sub> = 1.15 V D)  E <sub>cell</sub> = 1.22 V E)  E <sub>cell</sub> = 1.30 V Mn 2+ (aq) + Pb (s) E cell = 1.15 V What is the value of E cell at 298 K under non-standard conditions when Pb 2+ = 1.5 10 - 4 M and Mn 2+ = 4.5 10 - 2 M?


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