Q.Calculate emf of the following cell : Given : V, V [ log 10 = 1 ]
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Start your 14-day free trial to unlock the full solution →The cell emf is calculated using the Nernst equation after identifying the spontaneous reaction. The standard cell potential is , and after correcting for the non-standard concentrations, the emf comes out to (the concentration effect cancels out here).
The Nernst equation is the tool we need whenever a cell is not operating under standard conditions (1 M concentrations). It tells us how the cell potential changes when the concentrations of ions are different from 1 M. The core idea is that the driving force of the reaction — the voltage — depends on how far the reaction is from equilibrium.
For a general cell reaction:
the Nernst equation at 298 K is:
where is the reaction quotient, is the number of electrons transferred, and is the standard cell potential.
Now let’s apply this to the given cell.
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Identify the half-reactions and the spontaneous direction
The cell notation is:
The left side is the anode (oxidation), the right side is the cathode (reduction). So:
- Anode (oxidation):
- Cathode (reduction):
The standard reduction potentials are given:
The more positive (less negative) reduction potential belongs to , so will be reduced and will be oxidized — exactly as written.
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Calculate the standard cell potential
The positive value confirms the reaction is spontaneous under standard conditions.
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Write the overall cell reaction and find
Adding the half-reactions:
Two electrons are transferred, so .
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Write the reaction quotient
For the reaction above:
Solids (Zn and Sn) do not appear in . …
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