Multiple Choice
Calculate the cell potential for the following unbalanced reaction that takes place in an electrochemical cell at 25 °C when [ ] = 3.20 M and [
] = 0.000100 M Mg(s) +
(aq) →
(aq) + Fe(s)
E°(Mg2+/Mg) = -2.37 V and E°(Fe3+/Fe) = -0.036 V
A) -2.24 V
B) +2.24 V
C) +1.24 V
D) -1.24 V
E) +2.14 V
Correct Answer:

Verified
Correct Answer:
Verified
Q18: Use the standard half-cell potentials listed below
Q79: How much chromium, in g, can be
Q81: Calculate the cell potential for the following
Q82: What is the reducing agent in the
Q85: How much copper, in g, can be
Q87: Predict the species that will be reduced
Q88: Determine the cell notation for the redox
Q89: Consider the galvanic cell, <img src="https://d2lvgg3v3hfg70.cloudfront.net/TB7901/.jpg" alt="Consider
Q94: Why are iron nails coated with zinc?
Q113: How many grams of chromium metal are