Phys. Rev. E 65, 051106 (2002) [13 pages]Generalized quantum Fokker-Planck, diffusion, and Smoluchowski equations with true probability distribution functionsReceived 17 August 2001; revised 20 February 2002; published 3 May 2002 Traditionally, quantum Brownian motion is described by Fokker-Planck or diffusion equations in terms of quasiprobability distribution functions, e.g., Wigner functions. These often become singular or negative in the full quantum regime. In this paper a simple approach to non-Markovian theory of quantum Brownian motion using true probability distribution functions is presented. Based on an initial coherent state representation of the bath oscillators and an equilibrium canonical distribution of the quantum mechanical mean values of their coordinates and momenta, we derive a generalized quantum Langevin equation in c numbers and show that the latter is amenable to a theoretical analysis in terms of the classical theory of non-Markovian dynamics. The corresponding Fokker-Planck, diffusion, and Smoluchowski equations are the exact quantum analogs of their classical counterparts. The present work is independent of path integral techniques. The theory as developed here is a natural extension of its classical version and is valid for arbitrary temperature and friction (the Smoluchowski equation being considered in the overdamped limit). © 2002 The American Physical Society URL:
http://link.aps.org/doi/10.1103/PhysRevE.65.051106
DOI:
10.1103/PhysRevE.65.051106
PACS:
05.40.-a
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