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Regular and Chaotic Dynamics, 2021, Volume 26, Issue 2, Pages 131–146
DOI: https://doi.org/10.1134/S1560354721020039
(Mi rcd1107)
 

This article is cited in 2 scientific papers (total in 2 papers)

Special Issue: Nonlinear Dynamics in Chemical Sciences: Part II

Investigating the Stability and Accuracy of a Classical Mapping Variable Hamiltonian for Nonadiabatic Quantum Dynamics

Elliot C. Eklund, Nandini Ananth

School of Operation Research and Industrial Engineering, Department of Chemistry and Chemical Biology, Baker Laboratory, Cornell University Ithaca, 14853 NY, USA
Citations (2)
References:
Abstract: Previous work has shown that by using the path integral representation of quantum mechanics and by mapping discrete electronic states to continuous Cartesian variables, it is possible to derive an exact quantum “mapping variable” ring-polymer (MV-RP) Hamiltonian. The classical molecular dynamics generated by this MV-RP Hamiltonian can be used to calculate equilibrium properties of multi-level quantum systems exactly, and to approximate real-time thermal correlation functions (TCFs). Here, we derive mixed time-slicing forms of the MV-RP Hamiltonian where different modes of a multi-level system are quantized to different extents. We explore the accuracy of the approximate quantum dynamics generated by these Hamiltonians through numerical calculation of quantum real-time TCFs for a range of model nonadiabatic systems, where two electronic states are coupled to a single nuclear degree of freedom. Interestingly, we find that the dynamics generated by an MV-RP Hamiltonian with all modes treated classically is more stable across all model systems considered here than mixed quantization approaches. Further, we characterize nonadiabatic dynamics in the 6D phase space of our classical-limit MV-RP Hamiltonian using Lagrangian descriptors to identify stable and unstable manifolds.
Keywords: nonadiabatic, path integral, mapping variables, Lagrangian descriptors, correlation functions.
Funding agency Grant number
National Science Foundation CHE-1555205
N.A. acknowledges funding through NSF CAREER Award No. CHE-1555205.
Received: 27.08.2020
Accepted: 12.02.2021
Bibliographic databases:
Document Type: Article
MSC: 70Hxx, 70H33, 81-08
Language: English
Citation: Elliot C. Eklund, Nandini Ananth, “Investigating the Stability and Accuracy of a Classical Mapping Variable Hamiltonian for Nonadiabatic Quantum Dynamics”, Regul. Chaotic Dyn., 26:2 (2021), 131–146
Citation in format AMSBIB
\Bibitem{EklAna21}
\by Elliot C. Eklund, Nandini Ananth
\paper Investigating the Stability and Accuracy
of a Classical Mapping Variable Hamiltonian
for Nonadiabatic Quantum Dynamics
\jour Regul. Chaotic Dyn.
\yr 2021
\vol 26
\issue 2
\pages 131--146
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  • https://www.mathnet.ru/eng/rcd1107
  • https://www.mathnet.ru/eng/rcd/v26/i2/p131
  • This publication is cited in the following 2 articles:
    Citing articles in Google Scholar: Russian citations, English citations
    Related articles in Google Scholar: Russian articles, English articles
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    Abstract page:116
    References:28
     
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