Mesoscopic non-equilibrium thermodynamics for quantum systems
An extension of the scheme of non-equilibrium thermodynamics developed previously is given for quantum mechanical systems. A master equation for the density matrix of the system follows from this scheme. Onsager relations are given and derived. Application to a spin system gives the Bloch equations. The application to a one-dimensional damped harmonic oscillator results in equations, which enable us to calculate the usual Green functions. For the last case we derive, as a new alternative, quantum mechanical Langevin equations. A new element, compared to the classical Langevin equations, is a random velocity. The correlation of the random velocity with the random force then results from the zero point motion of the oscillator. The application of mesoscopic non-equilibrium thermodynamics to these wellknown problems illustrates the usefullness of this method.
Year of publication: |
2001
|
---|---|
Authors: | Bedeaux, D. ; Mazur, P. |
Published in: |
Physica A: Statistical Mechanics and its Applications. - Elsevier, ISSN 0378-4371. - Vol. 298.2001, 1, p. 81-100
|
Publisher: |
Elsevier |
Saved in:
Saved in favorites
Similar items by person
-
On the motion of a sphere with arbitrary slip in a viscous incompressible fluid
Albano, A.M., (1975)
-
On the theory of multiple scattering II. Critical scattering
Boots, H.M.J., (1976)
-
Behavior of the dielectric constant of fluids near a critical point
Sengers, J.V., (1980)
- More ...