Hot-electron relaxation: An exactly solvable model and improved quantum kinetic equations
- 15 August 1995
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 52 (8) , 5624-5636
- https://doi.org/10.1103/physrevb.52.5624
Abstract
We present a one-dimensional microscopic model of interacting electrons coupled to phonons that allows the exact calculation of the time evolution of the momentum distribution functions starting from a nonequilibrium initial state. The model shows relaxation features known from approximate calculations for more realistic three-dimensional models. The exact results are compared with approximate ones resulting from the use of quantum kinetic equations which avoid the assumption of completed successive scattering processes implicit in simple Boltzmann equations. To renormalize the electronic but not the phonon propagation in the non-Markovian equations yields no improvement uniform in time compared to simpler approximations. Due to the presence of the Fermi sea only the additional renormalization of the phonon propagation leads to a drastic improvement in comparison with the exact results.Keywords
This publication has 23 references indexed in Scilit:
- A New Transport Equation for Single-Time Green′s Functions in an Arbitrary Quantum System. General FormalismAnnals of Physics, 1994
- Non-Markovian relaxation in semiconductors: An exactly soluble modelJournal of Luminescence, 1994
- Band-edge quantum kinetics for coherent ultrashort-pulse spectroscopy in polar semiconductorsPhysical Review B, 1993
- Interband Quantum Kinetics with LO‐Phonon Scattering in a Laser‐Pulse‐Excited Semiconductor I. TheoryPhysica Status Solidi (b), 1992
- Interband Quantum Kinetics with LO‐Phonon Scattering in a Laser‐Pulse‐Excited Semiconductor II. Numerical StudiesPhysica Status Solidi (b), 1992
- Transverse Relaxation and Polarization Specifics in the Dynamical Stark EffectPhysica Status Solidi (b), 1990
- Generalized Kadanoff-Baym ansatz for deriving quantum transport equationsPhysical Review B, 1986
- 'Luttinger liquid theory' of one-dimensional quantum fluids. I. Properties of the Luttinger model and their extension to the general 1D interacting spinless Fermi gasJournal of Physics C: Solid State Physics, 1981
- An Exactly Soluble Model of a Many-Fermion SystemJournal of Mathematical Physics, 1963
- Remarks on Bloch's Method of Sound Waves applied to Many-Fermion ProblemsProgress of Theoretical Physics, 1950