Microscopic Reversibility
Microscopic reversibility is concerned with the behaviour of matter at the molecular level. To understand this concept clearly,…
Thermodynamics is the branch of physical chemistry that deals with the study of energy, heat, work, and the laws governing their interconversion during physical and chemical processes. It enables us…
Thermodynamics is the branch of physical chemistry that deals with the study of energy, heat, work, and the laws governing their interconversion during physical and chemical processes. It enables us to predict whether a process will occur spontaneously, determine the equilibrium state of a system, and calculate changes in thermodynamic properties such as internal energy, enthalpy, entropy, and Gibbs free energy. In modern chemistry, thermodynamics plays a vital role in understanding phase equilibria, chemical reactions, electrochemical systems, material science, and biological processes. This unit covers both classical thermodynamics and non-equilibrium thermodynamics, providing a comprehensive understanding of systems at equilibrium as well as irreversible processes occurring in nature.
After studying this unit, students will be able to understand the thermodynamic behavior of multicomponent systems, explain the significance of partial molar properties, calculate fugacity and activity coefficients, distinguish between equilibrium and non-equilibrium states, analyze entropy production in irreversible processes, understand the relationship between thermodynamic forces and fluxes, derive Onsager reciprocal relations, and apply the principles of non-equilibrium thermodynamics to electrochemical and transport phenomena.
Downloadable notes for this unit.
Microscopic reversibility is concerned with the behaviour of matter at the molecular level. To understand this concept clearly,…
Irreversible processes involve the transport of quantities such as heat, mass, momentum and electric charge. The transport takes…
A non-equilibrium stationary state is a state in which the macroscopic state variables of a system do not…
The entropy production of an irreversible process can be expressed as a sum of products of thermodynamic fluxes…
An open system can exchange both energy and matter with its surroundings. Therefore, the entropy balance of an…
Consider a chemical reaction occurring at constant temperature and constant pressure. The reaction may be represented in the…
Consider two bodies or two phases maintained at temperatures \(T_1\) and \(T_2\), with \[ T_2>T_1 \] Let an…
When an irreversible process takes place, the entropy of a system can change because entropy may be transferred…