Non-Markovian master equation for linear and nonlinear systems
- 1 August 1992
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review A
- Vol. 46 (3) , 1507-1515
- https://doi.org/10.1103/physreva.46.1507
Abstract
Based on the standard system-heat-bath model, we have formulated a theory of the non-Markovian master equation for linear and nonlinear systems for a correlation time that is short but finite. We have applied the theory to linear systems, such as harmonic oscillators and two-level atoms and calculated the band-shape functions for transient optical absorption in the pump-probe experiments. The significant interplay of nonlinearity and non-Markovian decay has been illustrated by another application of the theory to a Morse oscillator. The theory is valid for arbitrary nonlinearity and finite temperatures but within the weak-coupling limit and has been derived without ad hoc implementation of a phenomenological memory function.Keywords
This publication has 24 references indexed in Scilit:
- Quantum dissipation for the kicked particlePhysical Review A, 1989
- Time Evolution of a Quantum System in Contact with a Nearly Gaussian-Markoffian Noise BathJournal of the Physics Society Japan, 1989
- Strong damping and low-temperature anomalies for the harmonic oscillatorPhysical Review A, 1985
- Input and output in damped quantum systems: Quantum stochastic differential equations and the master equationPhysical Review A, 1985
- Quantum tunneling in the presence of an arbitrary linear dissipation mechanismPhysical Review B, 1984
- Statistical properties of quantum systems: The linear oscillatorPhysical Review A, 1984
- Quantum theory of the damped harmonic oscillatorZeitschrift für Physik B Condensed Matter, 1984
- Advanced SynergeticsPublished by Springer Nature ,1983
- Influence of Dissipation on Quantum Tunneling in Macroscopic SystemsPhysical Review Letters, 1981
- Non-markovian theory of molecular relaxation. I. Vibrational relaxation and dephasing in condensed phasesChemical Physics, 1979