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Electromotive Force Calculator.
Calculate standard cell EMF from cathode and anode reduction potentials.
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Les résultats se mettent à jour pendant la saisie.
Educational chemistry arithmetic only. Keep units consistent and verify assumptions against your laboratory or course specification.
Use Cases
Predict cell voltage for a galvanic cell
Quickly determine the standard EMF of a voltaic cell by entering the standard reduction potentials of the cathode and anode half-reactions.
Example: For a Zn-Cu cell, enter cathode (Cu) = 0.34 V and anode (Zn) = -0.76 V to get EMF = 1.10 V.
Compare electrode combinations
Evaluate different electrode pairs to see which gives a higher cell potential, useful for designing batteries or electrolytic cells.
Example: Compare Cu/Zn (1.10 V) vs. Ag/Zn (1.56 V) by entering respective potentials.
Frequently Asked Questions
- What is the formula used by this calculator?
- The calculator uses EMF = cathode reduction potential - anode reduction potential. This gives the standard cell potential (E°cell) in volts.
- What do cathode and anode reduction potentials mean?
- Cathode reduction potential is the standard reduction potential of the reduction half-reaction at the cathode. Anode reduction potential is the standard reduction potential of the reduction half-reaction at the anode. The difference determines the cell's driving force.
- Can I use this calculator for non-standard conditions?
- No, this calculator assumes standard conditions (1 M concentrations, 1 atm pressure, 25°C). For non-standard conditions, you would need the Nernst equation.
Tips & Common Mistakes
Tips
- Ensure you enter the reduction potentials with the correct sign (positive or negative) as given in standard reduction potential tables.
- The cathode is the electrode where reduction occurs; it has the higher (more positive) reduction potential. The anode is where oxidation occurs.
- Double-check that both potentials are for the same conditions (standard) and that you are using the reduction potentials, not oxidation potentials.
- If you get a negative EMF, the reaction is non-spontaneous as written; swap the electrodes to get a positive value.
Common Mistakes to Avoid
- Using oxidation potentials instead of reduction potentials. Always use reduction potentials for both electrodes.
- Swapping the cathode and anode potentials, which would give a negative EMF and misrepresent the cell's polarity.
- Forgetting to include the sign of the potentials. A common error is entering -0.76 V as 0.76 V for zinc, leading to an incorrect EMF.
Last updated: August 13, 2026