Non-equilibrium evolution of quantum systems connected to multiple baths

In this thesis we develop a systematic formalism that allows the calculation of transport properties for small quantum systems coupled to multiple baths with different temperatures and/or chemical potentials. Our approach is based on a generalization of the projector operator technique, previously u...

Full description

Bibliographic Details
Main Author: Wu, Jinshan
Language:English
Published: 2010
Online Access:http://hdl.handle.net/2429/18210
id ndltd-UBC-oai-circle.library.ubc.ca-2429-18210
record_format oai_dc
spelling ndltd-UBC-oai-circle.library.ubc.ca-2429-182102018-01-05T17:39:21Z Non-equilibrium evolution of quantum systems connected to multiple baths Wu, Jinshan In this thesis we develop a systematic formalism that allows the calculation of transport properties for small quantum systems coupled to multiple baths with different temperatures and/or chemical potentials. Our approach is based on a generalization of the projector operator technique, previously used to study the evolution towards equilibrium of systems weakly coupled to a single bath. Applying this technique to a system weakly coupled to multiple baths, we find a dynamical equation for the reduced density matrix of the system (the reduced density matrix is obtained by tracing out from the total density matrix the baths’ degrees of freedom). Integration of this dynamical equation gives the time evolution of the biased system. After a time interval long enough compared to the characteristic time-scales of the problem, the system arrives to a non-equilibrium steady-state. The density matrix in this non-equilibrium steady state can also be calculated directly, avoiding the time-integration of the dynamical equation. In the second part of the thesis we study non-equilibrium steady states and heat transport through short spin chains coupled to two thermal baths with different temperature. Two new definitions for the local temperature in nonequilibrium are proposed, based on local spin and energy at different sites. The definition based on the local energy seems to be more reliable. We find that for small biases, the heat and spin currents increase proportionally to the bias, however non-linear behavior is observed for large biases. The temperature profile of the chain depends strongly on the parameters of the system. Science, Faculty of Physics and Astronomy, Department of Graduate 2010-01-16T16:58:50Z 2010-01-16T16:58:50Z 2006 2006-11 Text Thesis/Dissertation http://hdl.handle.net/2429/18210 eng For non-commercial purposes only, such as research, private study and education. Additional conditions apply, see Terms of Use https://open.library.ubc.ca/terms_of_use.
collection NDLTD
language English
sources NDLTD
description In this thesis we develop a systematic formalism that allows the calculation of transport properties for small quantum systems coupled to multiple baths with different temperatures and/or chemical potentials. Our approach is based on a generalization of the projector operator technique, previously used to study the evolution towards equilibrium of systems weakly coupled to a single bath. Applying this technique to a system weakly coupled to multiple baths, we find a dynamical equation for the reduced density matrix of the system (the reduced density matrix is obtained by tracing out from the total density matrix the baths’ degrees of freedom). Integration of this dynamical equation gives the time evolution of the biased system. After a time interval long enough compared to the characteristic time-scales of the problem, the system arrives to a non-equilibrium steady-state. The density matrix in this non-equilibrium steady state can also be calculated directly, avoiding the time-integration of the dynamical equation. In the second part of the thesis we study non-equilibrium steady states and heat transport through short spin chains coupled to two thermal baths with different temperature. Two new definitions for the local temperature in nonequilibrium are proposed, based on local spin and energy at different sites. The definition based on the local energy seems to be more reliable. We find that for small biases, the heat and spin currents increase proportionally to the bias, however non-linear behavior is observed for large biases. The temperature profile of the chain depends strongly on the parameters of the system. === Science, Faculty of === Physics and Astronomy, Department of === Graduate
author Wu, Jinshan
spellingShingle Wu, Jinshan
Non-equilibrium evolution of quantum systems connected to multiple baths
author_facet Wu, Jinshan
author_sort Wu, Jinshan
title Non-equilibrium evolution of quantum systems connected to multiple baths
title_short Non-equilibrium evolution of quantum systems connected to multiple baths
title_full Non-equilibrium evolution of quantum systems connected to multiple baths
title_fullStr Non-equilibrium evolution of quantum systems connected to multiple baths
title_full_unstemmed Non-equilibrium evolution of quantum systems connected to multiple baths
title_sort non-equilibrium evolution of quantum systems connected to multiple baths
publishDate 2010
url http://hdl.handle.net/2429/18210
work_keys_str_mv AT wujinshan nonequilibriumevolutionofquantumsystemsconnectedtomultiplebaths
_version_ 1718590759916011520