Equilibrium-reduced density matrix formulation : influence of noise, disorder, and temperature on localization in excitonic systems

An exact method to compute the entire equilibrium-reduced density matrix for systems characterized by a system-bath Hamiltonian is presented. The approach is based upon a stochastic unraveling of the influence functional that appears in the imaginary time path integral formalism of quantum statistic...

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Main Authors: Moix, Jeremy M., Zhao, Yang, Cao, Jianshu
Other Authors: School of Materials Science & Engineering
Format: Article
Language:English
Published: 2013
Online Access:https://hdl.handle.net/10356/101968
http://hdl.handle.net/10220/9402
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1019682023-07-14T15:55:31Z Equilibrium-reduced density matrix formulation : influence of noise, disorder, and temperature on localization in excitonic systems Moix, Jeremy M. Zhao, Yang Cao, Jianshu School of Materials Science & Engineering An exact method to compute the entire equilibrium-reduced density matrix for systems characterized by a system-bath Hamiltonian is presented. The approach is based upon a stochastic unraveling of the influence functional that appears in the imaginary time path integral formalism of quantum statistical mechanics. This method is then applied to study the effects of thermal noise, static disorder, and temperature on the coherence length in excitonic systems. As representative examples of biased and unbiased systems, attention is focused on the well-characterized complexes of the Fenna-Matthews-Olson (FMO) protein and the light harvesting complex of purple bacteria, LH2, respectively. Due to the bias, FMO is completely localized in the site basis at low temperatures, whereas LH2 is completely delocalized. In the latter, the presence of static disorder leads to a plateau in the coherence length at low temperature that becomes increasingly pronounced with increasing strength of the disorder. The introduction of noise, however, precludes this effect. In biased systems, it is shown that the environment may increase the coherence length, but only decrease that of unbiased systems. Finally it is emphasized that for typical values of the environmental parameters in light harvesting systems, the system and bath are entangled at equilibrium in the single excitation manifold. That is, the density matrix cannot be described as a product state as is often assumed, even at room temperature. The reduced density matrix of LH2 is shown to be in precise agreement with the steady state limit of previous exact quantum dynamics calculations. Published version 2013-03-13T08:38:07Z 2019-12-06T20:47:36Z 2013-03-13T08:38:07Z 2019-12-06T20:47:36Z 2012 2012 Journal Article Moix, J. M., Zhao, Y., & Cao, J. (2012). Equilibrium-reduced density matrix formulation: Influence of noise, disorder, and temperature on localization in excitonic systems. Physical Review B, 85(11), 115412-. https://hdl.handle.net/10356/101968 http://hdl.handle.net/10220/9402 10.1103/PhysRevB.85.115412 en Physical review B © 2012 American Physical Society. This paper was published in Physical Review B and is made available as an electronic reprint (preprint) with permission of American Physical Society. The paper can be found at the following official DOI: [http://dx.doi.org/10.1103/PhysRevB.85.115412]. One print or electronic copy may be made for personal use only. Systematic or multiple reproduction, distribution to multiple locations via electronic or other means, duplication of any material in this paper for a fee or for commercial purposes, or modification of the content of the paper is prohibited and is subject to penalties under law. application/pdf
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description An exact method to compute the entire equilibrium-reduced density matrix for systems characterized by a system-bath Hamiltonian is presented. The approach is based upon a stochastic unraveling of the influence functional that appears in the imaginary time path integral formalism of quantum statistical mechanics. This method is then applied to study the effects of thermal noise, static disorder, and temperature on the coherence length in excitonic systems. As representative examples of biased and unbiased systems, attention is focused on the well-characterized complexes of the Fenna-Matthews-Olson (FMO) protein and the light harvesting complex of purple bacteria, LH2, respectively. Due to the bias, FMO is completely localized in the site basis at low temperatures, whereas LH2 is completely delocalized. In the latter, the presence of static disorder leads to a plateau in the coherence length at low temperature that becomes increasingly pronounced with increasing strength of the disorder. The introduction of noise, however, precludes this effect. In biased systems, it is shown that the environment may increase the coherence length, but only decrease that of unbiased systems. Finally it is emphasized that for typical values of the environmental parameters in light harvesting systems, the system and bath are entangled at equilibrium in the single excitation manifold. That is, the density matrix cannot be described as a product state as is often assumed, even at room temperature. The reduced density matrix of LH2 is shown to be in precise agreement with the steady state limit of previous exact quantum dynamics calculations.
author2 School of Materials Science & Engineering
author_facet School of Materials Science & Engineering
Moix, Jeremy M.
Zhao, Yang
Cao, Jianshu
format Article
author Moix, Jeremy M.
Zhao, Yang
Cao, Jianshu
spellingShingle Moix, Jeremy M.
Zhao, Yang
Cao, Jianshu
Equilibrium-reduced density matrix formulation : influence of noise, disorder, and temperature on localization in excitonic systems
author_sort Moix, Jeremy M.
title Equilibrium-reduced density matrix formulation : influence of noise, disorder, and temperature on localization in excitonic systems
title_short Equilibrium-reduced density matrix formulation : influence of noise, disorder, and temperature on localization in excitonic systems
title_full Equilibrium-reduced density matrix formulation : influence of noise, disorder, and temperature on localization in excitonic systems
title_fullStr Equilibrium-reduced density matrix formulation : influence of noise, disorder, and temperature on localization in excitonic systems
title_full_unstemmed Equilibrium-reduced density matrix formulation : influence of noise, disorder, and temperature on localization in excitonic systems
title_sort equilibrium-reduced density matrix formulation : influence of noise, disorder, and temperature on localization in excitonic systems
publishDate 2013
url https://hdl.handle.net/10356/101968
http://hdl.handle.net/10220/9402
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