ačcess important values if needed for this question. The free energy change for the following reaction at 25 °C, when [H]= 1.10 M and [Zn2]= 4.51×10-3 M, is -161 kJ: 2H (1.10 M) + Zn(s) H2(g) + Zn*(4.51×10 M) AG=-161 kJ What is the cell potential for the reaction as written under these conditions? Answer: V Would this reaction be spontaneous in the forward or the reverse direction? Submit Answer Retry Entire Group 9 more group attempts remaining

Chemistry
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ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
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Chapter1: Chemical Foundations
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Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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takeCovalentActivity.do?locator=Dassignment-take
[Review Topics]
[References]
eq
Use the References to access important values if needed for this question.
eq
The free energy change for the following reaction at 25 °C, when [H]=1.10 M and [Zn2] =4.51x10-3 M, is -161 kJ:
eq
2H*(1.10 M) + Zn(s)-
H2(g) + Zn²*(4.51×10-³ M) AG=-161 kJ
req
What is the cell potential for the reaction as written under these conditions?
eq
Answer:
V
M)
Would this reaction be spontaneous in the forward or the reverse direction?
"eq
Submit Answer
Retry Entire Group
9 more group attempts remaining
req
reg
In progress
Transcribed Image Text:takeCovalentActivity.do?locator=Dassignment-take [Review Topics] [References] eq Use the References to access important values if needed for this question. eq The free energy change for the following reaction at 25 °C, when [H]=1.10 M and [Zn2] =4.51x10-3 M, is -161 kJ: eq 2H*(1.10 M) + Zn(s)- H2(g) + Zn²*(4.51×10-³ M) AG=-161 kJ req What is the cell potential for the reaction as written under these conditions? eq Answer: V M) Would this reaction be spontaneous in the forward or the reverse direction? "eq Submit Answer Retry Entire Group 9 more group attempts remaining req reg In progress
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