Chemistry
Instant, private, and free
Electromotive Force Calculator.
Calculate standard cell EMF from cathode and anode reduction potentials.
Set your values
Results update as you type.
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