1. For the following reaction at 25 °C, 3+ SFe2+(aq) + Mn (aq) + 8H+(aq) = 5Fe³+ (aq) + Mn²+ (aq) + 4H O), calculate (a) the standard potential, (b) the equilibrium constant, and (c) the potential under these conditions: [Fe2+] = 0.50 M, [Fe³+] = 0.10 M, [MnO4] = 0.025 M, [Mn²+] = 0.015 M, and a pH of 7.00.

Principles of Modern Chemistry
8th Edition
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Author:David W. Oxtoby, H. Pat Gillis, Laurie J. Butler
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Chapter17: Electrochemistry
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1. For the following reaction at 25 °C,
SFe2+(aq) + Mn (aq) + 8H+(aq) = 5Fe³+ (aq) + Mn²+ (aq) + 4H 06),
calculate (a) the standard potential, (b) the equilibrium constant, and (c) the potential under these
conditions: [Fe2+] = 0.50 M, [Fe³+] = 0.10 M, [MnO4] = 0.025 M, [Mn²+] = 0.015 M, and a pH
of 7.00.
Transcribed Image Text:1. For the following reaction at 25 °C, SFe2+(aq) + Mn (aq) + 8H+(aq) = 5Fe³+ (aq) + Mn²+ (aq) + 4H 06), calculate (a) the standard potential, (b) the equilibrium constant, and (c) the potential under these conditions: [Fe2+] = 0.50 M, [Fe³+] = 0.10 M, [MnO4] = 0.025 M, [Mn²+] = 0.015 M, and a pH of 7.00.
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