Rating 5.0 out of 5 (2 ratings in Udemy)
What you'll learn- Describe an electrochemical cell and differentiate between galvanic and electrolytic cells
- Apply Nernst equation for calculating the emf of galvanic cell and define standard potential of the cell
- Derive relation between standard potential of the cell, Gibbs energy of cell reaction and its equilibrium constant
- Define resistivity (ρ), conductivity (κ) and molar conductivity (✆m ) of ionic solutions
- Differentiate between ionic …
Rating 5.0 out of 5 (2 ratings in Udemy)
What you'll learn- Describe an electrochemical cell and differentiate between galvanic and electrolytic cells
- Apply Nernst equation for calculating the emf of galvanic cell and define standard potential of the cell
- Derive relation between standard potential of the cell, Gibbs energy of cell reaction and its equilibrium constant
- Define resistivity (ρ), conductivity (κ) and molar conductivity (✆m ) of ionic solutions
- Differentiate between ionic (electrolytic) and electronic conductivity
- Describe the method for measurement of conductivity of electrolytic solutions and calculation of their molar conductivity
- Justify the variation of conductivity and molar conductivity of solution with change in their concentration and define Λ°m
- Enunciate Kohlrausch law and learn its applications
- Understand quantitative aspects of electrolysis
- Describe the construction of some primary and secondary batteries and fuel cells
- Explain corrosion as an electrochemical process
DescriptionSUMMARY
An electrochemical cell consists of two metallic electrodes dipping in electrolytic solution(s). Thus an important component of the electrochemical cell is the ionic conductor or electrolyte. Electrochemical cells are of two types. In galvanic cell, the chemical energy of a spontaneous redox reaction is converted into electrical work, whereas in an electrolytic cell, electrical energy is used to carry out a nonspontaneous redox reaction. The standard electrode potential for any electrode dipping in an appropriate solution is defined with respect to standard electrode potential of hydrogen electrode taken as zero. Concentration dependence of the potentials of the electrodes and the cells are given by Nernst equation. The conductivity, κ, of an electrolytic solution depends on the concentration of the electrolyte, nature of solvent and temperature. Molar conductivity, Λm, is defined by = κ/c where c is the concentration. Conductivity decreases but molar conductivity increases with decrease in concentration. It increases slowly with decrease in concentration for strong electrolytes while the increase is very steep for weak electrolytes in very dilute solutions. Kohlrausch found that molar conductivity at infinite dilution, for an electrolyte is sum of the contribution of the molar conductivity of the ions in which it dissociates. It is known as law of independent migration of ions and has many applications. Ions conduct electricity through the solution but oxidation and reduction of the ions take place at the electrodes in an electrochemical cell. Batteries and fuel cells are very useful forms of galvanic cell. Corrosion of metals is essentially an electrochemical phenomenon. Electrochemical principles are relevant to the Hydrogen Economy.