Given the following electrochemical cell, calculate the potential for the cell in which the concentration of Ag+ is 0.0765 M, the pH of the H* cell is 2.700, and the pressure for H₂ is held constant at 1 atm. The temperature is held constant at 55°C. Ag Ag+ SHELL 1727 H+

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Given the following electrochemical cell, calculate the potential for the cell in which the concentration of Ag+ is 0.0765 M, the pH of the H* cell
is 2.700, and the pressure for H₂ is held constant at 1 atm. The temperature is held constant at 55°C.
Ag
Agt
H+
+
Ag+le
←H₂(g)
Standard reduction potentials:
2H+ + 2e
H₂ Fº = 0 V
→ Ag E°=0.800 V
Transcribed Image Text:Given the following electrochemical cell, calculate the potential for the cell in which the concentration of Ag+ is 0.0765 M, the pH of the H* cell is 2.700, and the pressure for H₂ is held constant at 1 atm. The temperature is held constant at 55°C. Ag Agt H+ + Ag+le ←H₂(g) Standard reduction potentials: 2H+ + 2e H₂ Fº = 0 V → Ag E°=0.800 V
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Given the following electrochemical cell, calculate the potential for the cell in which the concentration of Ag+ is 0.0765 M, the pH of the H* cell
is 2.700, and the pressure for H₂ is held constant at 1 atm. The temperature is held constant at 55°C.
Ag
Ag+
H+
Standard reduction potentials:
2H+ +2e¯ → H₂ Eº = 0 V
Ag+ le
- H₂(g)
→ Ag Eº=0.800 V
Transcribed Image Text:Given the following electrochemical cell, calculate the potential for the cell in which the concentration of Ag+ is 0.0765 M, the pH of the H* cell is 2.700, and the pressure for H₂ is held constant at 1 atm. The temperature is held constant at 55°C. Ag Ag+ H+ Standard reduction potentials: 2H+ +2e¯ → H₂ Eº = 0 V Ag+ le - H₂(g) → Ag Eº=0.800 V
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