Multidimensional stochastic dissipative quantum dynamics using a Lindblad operator

Author:

Mandal Souvik1ORCID,Gatti Fabien2ORCID,Bindech Oussama3ORCID,Marquardt Roberto3ORCID,Tremblay Jean-Christophe1ORCID

Affiliation:

1. Laboratoire de Physique et Chimie Théoriques, UMR 7019 CNRS/Université de Lorraine, 1 Blvd. Arago, 57070 Metz, France

2. Institut de Sciences Moléculaires d’Orsay, UMR 8214 CNRS/Université Paris-Saclay, Bât 520, rue André Rivière, 91405 Orsay CEDEX, France

3. Laboratoire de Chimie Quantique, Institut de Chimie, UMR 7177 CNRS/Université de Strasbourg, 4, rue Blaise Pascal, CS 90032, 67081 Strasbourg CEDEX, France

Abstract

In this paper, multidimensional dissipative quantum dynamics is studied within a system–bath approach in the Markovian regime using a model Lindblad operator. We report on the implementation of a Monte Carlo wave packet algorithm in the Heidelberg version of the Multi-Configuration Time-Dependent Hartree (MCTDH) program package, which is henceforth extended to treat stochastic dissipative dynamics. The Lindblad operator is represented as a sum of products of one-dimensional operators. The new form of the operator is not restricted to the MCTDH formalism and could be used with other multidimensional quantum dynamical methods. As a benchmark system, a two-dimensional coupled oscillators model representing the internal stretch and the surface–molecule distance in the O2/Pt(111) system coupled to a Markovian bath of electron–hole-pairs is used. The simulations reveal the interplay between coherent intramolecular coupling due to anharmonic terms in the potential and incoherent relaxation due to coupling to an environment. It is found that thermalization of the system can be approximately achieved when the intramolecular coupling is weak.

Funder

Agence Nationale de la Recherche

Center National de la Recherche Scientifique

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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