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Multistate Reaction Coordinate Model for Charge and Energy Transfer Dynamics in the Condensed Phase

[Image: see text] Constructing multistate model Hamiltonians from all-atom electronic structure calculations and molecular dynamics simulations is crucial for understanding charge and energy transfer dynamics in complex condensed phases. The most popular two-level system model is the spin-boson Hami...

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Autores principales: Liu, Zengkui, Hu, Haorui, Sun, Xiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10601487/
https://www.ncbi.nlm.nih.gov/pubmed/37815937
http://dx.doi.org/10.1021/acs.jctc.3c00770
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author Liu, Zengkui
Hu, Haorui
Sun, Xiang
author_facet Liu, Zengkui
Hu, Haorui
Sun, Xiang
author_sort Liu, Zengkui
collection PubMed
description [Image: see text] Constructing multistate model Hamiltonians from all-atom electronic structure calculations and molecular dynamics simulations is crucial for understanding charge and energy transfer dynamics in complex condensed phases. The most popular two-level system model is the spin-boson Hamiltonian, where the nuclear degrees of freedom are represented as shifted normal modes. Recently, we proposed the general multistate nontrivial extension of the spin-boson model, i.e., the multistate harmonic (MSH) model, which is constructed by extending the spatial dimensions of each nuclear mode so as to satisfy the all-atom reorganization energy restrictions for all pairs of electronic states. In this work, we propose the multistate reaction coordinate (MRC) model with a primary reaction coordinate and secondary bath modes as in the Caldeira-Leggett form but in extended spatial dimensions. The MRC model is proven to be equivalent to the MSH model and offers an intuitive physical picture of the nuclear-electronic feedback in nonadiabatic processes such as the inherent trajectory of the reaction coordinate. The reaction coordinate is represented in extended dimensions, carrying the entire reorganization energies and bilinearly coupled to the secondary bath modes. We demonstrate the MRC model construction for photoinduced charge transfer in an organic photovoltaic caroteniod-porphyrin-C(60) molecular triad dissolved in tetrahydrofuran as well as excitation energy transfer in a photosynthetic light-harvesting Fenna-Matthews-Olson complex. The MRC model provides an effective and robust platform for investigating quantum dissipative dynamics in complex condensed-phase systems since it allows a consistent description of realistic spectral density, state-dependent system-bath couplings, and heterogeneous environments due to static disorder in reorganization energies.
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spelling pubmed-106014872023-10-27 Multistate Reaction Coordinate Model for Charge and Energy Transfer Dynamics in the Condensed Phase Liu, Zengkui Hu, Haorui Sun, Xiang J Chem Theory Comput [Image: see text] Constructing multistate model Hamiltonians from all-atom electronic structure calculations and molecular dynamics simulations is crucial for understanding charge and energy transfer dynamics in complex condensed phases. The most popular two-level system model is the spin-boson Hamiltonian, where the nuclear degrees of freedom are represented as shifted normal modes. Recently, we proposed the general multistate nontrivial extension of the spin-boson model, i.e., the multistate harmonic (MSH) model, which is constructed by extending the spatial dimensions of each nuclear mode so as to satisfy the all-atom reorganization energy restrictions for all pairs of electronic states. In this work, we propose the multistate reaction coordinate (MRC) model with a primary reaction coordinate and secondary bath modes as in the Caldeira-Leggett form but in extended spatial dimensions. The MRC model is proven to be equivalent to the MSH model and offers an intuitive physical picture of the nuclear-electronic feedback in nonadiabatic processes such as the inherent trajectory of the reaction coordinate. The reaction coordinate is represented in extended dimensions, carrying the entire reorganization energies and bilinearly coupled to the secondary bath modes. We demonstrate the MRC model construction for photoinduced charge transfer in an organic photovoltaic caroteniod-porphyrin-C(60) molecular triad dissolved in tetrahydrofuran as well as excitation energy transfer in a photosynthetic light-harvesting Fenna-Matthews-Olson complex. The MRC model provides an effective and robust platform for investigating quantum dissipative dynamics in complex condensed-phase systems since it allows a consistent description of realistic spectral density, state-dependent system-bath couplings, and heterogeneous environments due to static disorder in reorganization energies. American Chemical Society 2023-10-10 /pmc/articles/PMC10601487/ /pubmed/37815937 http://dx.doi.org/10.1021/acs.jctc.3c00770 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Liu, Zengkui
Hu, Haorui
Sun, Xiang
Multistate Reaction Coordinate Model for Charge and Energy Transfer Dynamics in the Condensed Phase
title Multistate Reaction Coordinate Model for Charge and Energy Transfer Dynamics in the Condensed Phase
title_full Multistate Reaction Coordinate Model for Charge and Energy Transfer Dynamics in the Condensed Phase
title_fullStr Multistate Reaction Coordinate Model for Charge and Energy Transfer Dynamics in the Condensed Phase
title_full_unstemmed Multistate Reaction Coordinate Model for Charge and Energy Transfer Dynamics in the Condensed Phase
title_short Multistate Reaction Coordinate Model for Charge and Energy Transfer Dynamics in the Condensed Phase
title_sort multistate reaction coordinate model for charge and energy transfer dynamics in the condensed phase
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10601487/
https://www.ncbi.nlm.nih.gov/pubmed/37815937
http://dx.doi.org/10.1021/acs.jctc.3c00770
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