Part 1: What is the calculated value of the cell potential at 298K for an electrochemical cell with the following reaction, when the H₂ pressure is 5.12x10-3 atm, the H+ concentration is 1.16M, and the Mn2+ concentration is 9.12×10-4M ? 2H+(aq) + Mn(s)→→→→ H₂(g) + Mn²+(aq) Answer: The cell reaction as written above is spontaneous for the concentrations given: Part 2: V What is the calculated value of the cell potential at 298K for an electrochemical cell with the following reaction, when the F2 pressure is 1.05 atm, the F concentration is 1.25x10- 3M, and the Co2+ concentration is 1.64x10-4M ? F₂(g) + Co(s) 2F (aq) + Co²+ (aq) Answer: V The cell reaction as written above is spontaneous for the concentrations given:
Part 1: What is the calculated value of the cell potential at 298K for an electrochemical cell with the following reaction, when the H₂ pressure is 5.12x10-3 atm, the H+ concentration is 1.16M, and the Mn2+ concentration is 9.12×10-4M ? 2H+(aq) + Mn(s)→→→→ H₂(g) + Mn²+(aq) Answer: The cell reaction as written above is spontaneous for the concentrations given: Part 2: V What is the calculated value of the cell potential at 298K for an electrochemical cell with the following reaction, when the F2 pressure is 1.05 atm, the F concentration is 1.25x10- 3M, and the Co2+ concentration is 1.64x10-4M ? F₂(g) + Co(s) 2F (aq) + Co²+ (aq) Answer: V The cell reaction as written above is spontaneous for the concentrations given:
Chemistry
10th Edition
ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Chapter1: Chemical Foundations
Section: Chapter Questions
Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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Give both answer plz
![I'm really struggling with Nernst half-cell
calculations.
Any help would be greatly appreciated!
Part 1:
What is the calculated value of the cell potential at 298K for
an electrochemical cell with the following reaction, when the
H₂ pressure is 5.12×10-³ atm, the H+ concentration is
1.16M, and the Mn2+ concentration is 9.12×10-4M ?
2H+ (aq) + Mn(s)→→→→→ H₂(g) + Mn²+(aq)
Answer:
The cell reaction as written above is spontaneous for the
concentrations given:
Part 2:
V
What is the calculated value of the cell potential at 298K for
an electrochemical cell with the following reaction, when the
F2 pressure is 1.05 atm, the F concentration is 1.25x10-
3M, and the Co2+ concentration is 1.64x10-4M ?
F₂(g) + Co(s)—2F¯(aq) + Co²+ (aq)
Answer:
The cell reaction as written above is spontaneous for the
concentrations given:](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F800ab837-ddf2-45d1-80d2-eda73338a2ae%2Fbe45372b-c0f5-4849-a40d-1c05a75057a3%2Fru5i6ri_processed.jpeg&w=3840&q=75)
Transcribed Image Text:I'm really struggling with Nernst half-cell
calculations.
Any help would be greatly appreciated!
Part 1:
What is the calculated value of the cell potential at 298K for
an electrochemical cell with the following reaction, when the
H₂ pressure is 5.12×10-³ atm, the H+ concentration is
1.16M, and the Mn2+ concentration is 9.12×10-4M ?
2H+ (aq) + Mn(s)→→→→→ H₂(g) + Mn²+(aq)
Answer:
The cell reaction as written above is spontaneous for the
concentrations given:
Part 2:
V
What is the calculated value of the cell potential at 298K for
an electrochemical cell with the following reaction, when the
F2 pressure is 1.05 atm, the F concentration is 1.25x10-
3M, and the Co2+ concentration is 1.64x10-4M ?
F₂(g) + Co(s)—2F¯(aq) + Co²+ (aq)
Answer:
The cell reaction as written above is spontaneous for the
concentrations given:
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