The dissipative Bose-Hubbard modelMethods and examples

被引:0
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作者
G. Kordas
D. Witthaut
P. Buonsante
A. Vezzani
R. Burioni
A. I. Karanikas
S. Wimberger
机构
[1] University of Athens,Physics Department, Nuclear & Particle Physics Section
[2] Forschungszentrum Jülich,Institute for Energy and Climate Research (IEK
[3] University of Cologne,STE)
[4] QSTAR,Institute for Theoretical Physics
[5] INO-CNR and LENS,Dipartimento di Fisica e Scienze della Terra
[6] S3,Sezione di Milano Bicocca, Gruppo Collegato di Parma
[7] CNR Istituto di Nanoscienze,undefined
[8] Università di Parma,undefined
[9] INFN,undefined
关键词
European Physical Journal Special Topic; Master Equation; Phase Noise; Wigner Function; Dark Soliton;
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摘要
Open many-body quantum systems have attracted renewed interest in the context of quantum information science and quantum transport with biological clusters and ultracold atomic gases. The physical relevance in many-particle bosonic systems lies in the realization of counter-intuitive transport phenomena and the stochastic preparation of highly stable and entangled many-body states due to engineered dissipation. We review a variety of approaches to describe an open system of interacting ultracold bosons which can be modeled by a tight-binding Hubbard approximation. Going along with the presentation of theoretical and numerical techniques, we present a series of results in diverse setups, based on a master equation description of the dissipative dynamics of ultracold bosons in a one-dimensional lattice. Next to by now standard numerical methods such as the exact unravelling of the master equation by quantum jumps for small systems and beyond mean-field expansions for larger ones, we present a coherent-state path integral formalism based on Feynman-Vernon theory applied to a many-body context.
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页码:2127 / 2171
页数:44
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