6. i ii Consider the following half reactions: Write the balanced half-reaction for the oxidation that occurs. Write the balanced half-reaction for the reduction that occurs. iii Write the balanced redox reaction. V Calculate the cell potential. iv Write the potential for each half-reaction next to it (the values are in your text) vi Calculate AG° at 25 °C. vii Is this reaction spontaneous? Why? viii Draw and label the cell for this reaction. Zn²+ + 2e¹- → Zn Fe³+ + 3e¹- → Fe ix Write the line notation for the cell. E° = -0.76 V E = -0.036V DELL

Chemistry
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Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
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Chapter1: Chemical Foundations
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6.
i
ii
Consider the following half reactions:
Write the balanced half-reaction
for the oxidation that occurs.
Write the balanced half-reaction
for the reduction that occurs.
iii Write the balanced redox reaction.
V Calculate the cell potential.
iv Write the potential for each half-reaction next to it (the values are in your text)
vi Calculate AG at 25 °C.
vii Is this reaction spontaneous? Why?
viii Draw and label the cell for this reaction.
Zn²+ + 2e¹- → Zn
Fe³+ + 3e¹- → Fe
ix Write the line notation for the cell.
E° = -0.76 V
E = -0.036V
DELL
Transcribed Image Text:6. i ii Consider the following half reactions: Write the balanced half-reaction for the oxidation that occurs. Write the balanced half-reaction for the reduction that occurs. iii Write the balanced redox reaction. V Calculate the cell potential. iv Write the potential for each half-reaction next to it (the values are in your text) vi Calculate AG at 25 °C. vii Is this reaction spontaneous? Why? viii Draw and label the cell for this reaction. Zn²+ + 2e¹- → Zn Fe³+ + 3e¹- → Fe ix Write the line notation for the cell. E° = -0.76 V E = -0.036V DELL
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