Published March 1, 2018 | Version v1
Journal article

The thermodynamical foundation of electronic conduction in solids

  • 1. UFR de Physique et Applications, Sorbonne Universités, Université Pierre et Marie Curie (Paris 6), 4 place Jussieu, F-75252 Paris Cedex 05 (France)
  • 2. Matériaux et Phénomènes Quantiques, Unité mixte 7162 CNRS and Université Denis Diderot (Paris 7), case 7021, 5 rue Thomas Mann, F-75205 Paris Cedex 13 (France)

Description

In elementary textbooks, the microscopic justification of Ohm's local law in a solid medium starts with Drude's classical model of electron transport and next discusses the quantum-dynamical and statistical amendments. In this paper, emphasis is laid instead upon the thermodynamical background motivated by the Joule–Lenz heating effect accompanying conduction and the fact that the conduction electrons are thermalized at the lattice temperature. Both metals and n-type semiconductors are considered; but conduction under a magnetic field is not. Proficiency in second-year thermodynamics and vector analysis is required from an undergraduate university student in physics so that the content of the paper can be taught to third-year students. The necessary elements of quantum mechanics are posited in this paper without detailed justification. We start with the equilibrium-thermodynamic notion of the chemical potential of the electron gas, the value of which distinguishes metals from semiconductors. Then we turn to the usage of the electrochemical potential in the description of near-equilibrium electron transport. The response of charge carriers to the electrochemical gradient involves the mobility, which is the reciprocal of the coefficient of the effective friction force opposing the carrier drift. Drude's calculation of mobility is restated with the dynamical requirements of quantum physics. Where the carrier density is inhomogeneous, there appears diffusion, the coefficient of which is thermodynamically related to the mobility. Next, it is remarked that the release of heat was ignored in Drude's original model. In this paper, the flow of Joule heat is handled thermodynamically within an energy balance where the voltage generator, the conduction electrons and the host lattice are involved in an explicit way. The notion of dissipation is introduced as the rate of entropy creation in a steady state. The body of the paper is restricted to the case of one homogeneous temperature. The generalisation of the thermodynamical framework to an inhomogeneous temperature field is sketched in an appendix. A fluid-mechanical picture of electronic conduction is obtained as a by-product of that framework. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/1361-6404/aa9caf

Additional details

Identifiers

Publishing Information

Journal Title
European Journal of Physics
Journal Volume
39
Journal Issue
2
Journal Page Range
[21 p.]
ISSN
0143-0807
CODEN
EJPHD4

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
51068989
Subject category
S71: CLASSICAL AND QUANTUM MECHANICS, GENERAL PHYSICS;
Descriptors DEI
CARRIER DENSITY; CHARGE CARRIERS; ELECTROCHEMISTRY; ENTROPY; MAGNETIC FIELDS; QUANTUM MECHANICS; SEMICONDUCTOR MATERIALS; SOLIDS; STEADY-STATE CONDITIONS; THERMODYNAMICS
Descriptors DEC
CHEMISTRY; MATERIALS; MECHANICS; PHYSICAL PROPERTIES; THERMODYNAMIC PROPERTIES