Correlation Functions in Open Quantum-Classical Systems

Quantum time correlation functions are often the principal objects of interest in experimental investigations of the dynamics of quantum systems. For instance, transport properties, such as diffusion and reaction rate coefficients, can be obtained by integrating these functions. The evaluation of su...

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Main Authors: Chang-Yu Hsieh, Raymond Kapral
Format: Article
Language:English
Published: MDPI AG 2013-12-01
Series:Entropy
Subjects:
Online Access:http://www.mdpi.com/1099-4300/16/1/200
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spelling doaj-12c3979a461441eab6894fbcfd135f522020-11-25T00:07:00ZengMDPI AGEntropy1099-43002013-12-0116120022010.3390/e16010200e16010200Correlation Functions in Open Quantum-Classical SystemsChang-Yu Hsieh0Raymond Kapral1Chemical Physics Theory Group, Department of Chemistry, University of Toronto, Toronto, ON M5S 3H6, CanadaChemical Physics Theory Group, Department of Chemistry, University of Toronto, Toronto, ON M5S 3H6, CanadaQuantum time correlation functions are often the principal objects of interest in experimental investigations of the dynamics of quantum systems. For instance, transport properties, such as diffusion and reaction rate coefficients, can be obtained by integrating these functions. The evaluation of such correlation functions entails sampling from quantum equilibrium density operators and quantum time evolution of operators. For condensed phase and complex systems, where quantum dynamics is difficult to carry out, approximations must often be made to compute these functions. We present a general scheme for the computation of correlation functions, which preserves the full quantum equilibrium structure of the system and approximates the time evolution with quantum-classical Liouville dynamics. Several aspects of the scheme are discussed, including a practical and general approach to sample the quantum equilibrium density, the properties of the quantum-classical Liouville equation in the context of correlation function computations, simulation schemes for the approximate dynamics and their interpretation and connections to other approximate quantum dynamical methods.http://www.mdpi.com/1099-4300/16/1/200quantum correlation functionsquantum-classical systemsnonadiabatic dynamics
collection DOAJ
language English
format Article
sources DOAJ
author Chang-Yu Hsieh
Raymond Kapral
spellingShingle Chang-Yu Hsieh
Raymond Kapral
Correlation Functions in Open Quantum-Classical Systems
Entropy
quantum correlation functions
quantum-classical systems
nonadiabatic dynamics
author_facet Chang-Yu Hsieh
Raymond Kapral
author_sort Chang-Yu Hsieh
title Correlation Functions in Open Quantum-Classical Systems
title_short Correlation Functions in Open Quantum-Classical Systems
title_full Correlation Functions in Open Quantum-Classical Systems
title_fullStr Correlation Functions in Open Quantum-Classical Systems
title_full_unstemmed Correlation Functions in Open Quantum-Classical Systems
title_sort correlation functions in open quantum-classical systems
publisher MDPI AG
series Entropy
issn 1099-4300
publishDate 2013-12-01
description Quantum time correlation functions are often the principal objects of interest in experimental investigations of the dynamics of quantum systems. For instance, transport properties, such as diffusion and reaction rate coefficients, can be obtained by integrating these functions. The evaluation of such correlation functions entails sampling from quantum equilibrium density operators and quantum time evolution of operators. For condensed phase and complex systems, where quantum dynamics is difficult to carry out, approximations must often be made to compute these functions. We present a general scheme for the computation of correlation functions, which preserves the full quantum equilibrium structure of the system and approximates the time evolution with quantum-classical Liouville dynamics. Several aspects of the scheme are discussed, including a practical and general approach to sample the quantum equilibrium density, the properties of the quantum-classical Liouville equation in the context of correlation function computations, simulation schemes for the approximate dynamics and their interpretation and connections to other approximate quantum dynamical methods.
topic quantum correlation functions
quantum-classical systems
nonadiabatic dynamics
url http://www.mdpi.com/1099-4300/16/1/200
work_keys_str_mv AT changyuhsieh correlationfunctionsinopenquantumclassicalsystems
AT raymondkapral correlationfunctionsinopenquantumclassicalsystems
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