Redox Basics
Electrochemical Cells
Thermodynamics
Important Equations
Problem Solving
100

What is oxidation?


 Loss of electrons.

100

What is an electrochemical cell?


A device that converts chemical energy into electrical energy.

100

What does ΔG represent?


Gibbs free energy change of a reaction.

100

Write the equation for calculating cell potential.


E°cell = E°cathode − E°anode

100

Given:

E°Ag = +0.80 V
E°Cu = +0.34 V

Calculate E°cell.


0.80 − 0.34 = 0.46 V

200

What is reduction?

 Gain of electrons.

200

Electrons flow from which electrode to which?


Anode → Cathode

200

What does ΔG < 0 mean?


The reaction is spontaneous.

200

What does n represent in ΔG = −nFE°?


Number of electrons transferred

200

Given:

E°cell = 1.10 V
n = 2

Find ΔG°.


ΔG° ≈ −212 kJ/mol

300

In a redox reaction, what is the oxidizing agent?

 The substance that accepts electrons and gets reduced.

300

What is the function of the salt bridge?


 Maintains charge balance by allowing ions to move.

300

What does E°cell > 0 indicate?


The reaction is spontaneous.

300

What constant does F represent?


Faraday constant (96485 C/mol)

300

Given:

n = 2
E°cell = 0.50 V

Question:
Find ΔG°.

Use:

ΔG° = −nFE°

ΔG° = −(2)(96485)(0.50)

ΔG° ≈ −96.5 kJ/mol

400

In an electrochemical cell, where does oxidation occur?


At the anode.

400

What type of cell produces electricity from a spontaneous reaction?


 Galvanic (Voltaic) cell

400

What equation relates Gibbs free energy and cell potential?


ΔG° = −nFE°

400

What equation relates Gibbs free energy and equilibrium constant?


ΔG° = −RT lnK

400

Find the cell potential.

Given:

E°(Fe³⁺/Fe²⁺) = +0.77 V
E°(Zn²⁺/Zn) = −0.76 V

Question:

Calculate E°cell.


E°cell = 0.77 − (−0.76)

500

Identify the oxidizing agent in this reaction:

Zn + Cu²⁺ → Zn²⁺ + Cu


Cu²⁺

500

What is the reference electrode used for measuring standard potentials?


Standard Hydrogen Electrode (SHE)

500

If ΔG is positive, what does this indicate about the reaction?


The reaction is non-spontaneous.

500

Write the equation relating cell potential and equilibrium constant.



E° = (0.059/n) logK

500

Given:

n = 3
E°cell = 0.75 V

Question:

Calculate ΔG°.


ΔG° = −nFE°

ΔG° = −(3)(96485)(0.75)

ΔG° ≈ −217 kJ/mol

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