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Large-Scale Description of Interacting One-Dimensional Bose Gases: Generalized Hydrodynamics Supersedes Conventional Hydrodynamics

Authors :
Robert Konik
Takato Yoshimura
Jérôme Dubail
Benjamin Doyon
King‘s College London
Institut Jean Lamour (IJL)
Institut de Chimie du CNRS (INC)-Université de Lorraine (UL)-Centre National de la Recherche Scientifique (CNRS)
Brookhaven National Laboratory [Upton, NY] (BNL)
UT-Battelle, LLC-Stony Brook University [SUNY] (SBU)
State University of New York (SUNY)-State University of New York (SUNY)-U.S. Department of Energy [Washington] (DOE)
Institut de Physique Théorique - UMR CNRS 3681 (IPHT)
Commissariat à l'énergie atomique et aux énergies alternatives (CEA)-Université Paris-Saclay-Centre National de la Recherche Scientifique (CNRS)
U.S. Department of Energy [Washington] (DOE)-UT-Battelle, LLC-Stony Brook University [SUNY] (SBU)
State University of New York (SUNY)-State University of New York (SUNY)
Centre National de la Recherche Scientifique (CNRS)-Université Paris-Saclay-Commissariat à l'énergie atomique et aux énergies alternatives (CEA)
Université de Lorraine (UL)-Institut de Chimie du CNRS (INC)-Centre National de la Recherche Scientifique (CNRS)
Source :
Physical Review Letters, Physical Review Letters, 2017, 119 (19), pp.195301. ⟨10.1103/PhysRevLett.119.195301⟩, Doyon, B, Dubail, J, Konik, R & Yoshimura, T 2017, ' Large-Scale Description of Interacting One-Dimensional Bose Gases: Generalized Hydrodynamics Supersedes Conventional Hydrodynamics ', Physical Review Letters, vol. 119, 195301 . https://doi.org/10.1103/PhysRevLett.119.195301, Physical Review Letters, American Physical Society, 2017, 119 (19), pp.195301. ⟨10.1103/PhysRevLett.119.195301⟩
Publication Year :
2017
Publisher :
American Physical Society (APS), 2017.

Abstract

The theory of generalized hydrodynamics (GHD) was recently developed as a new tool for the study of inhomogeneous time evolution in many-body interacting systems with infinitely many conserved charges. In this letter, we show that it supersedes the widely used conventional hydrodynamics (CHD) of one-dimensional Bose gases. We illustrate this by studying "nonlinear sound waves" emanating from initial density accumulations in the Lieb-Liniger model. We show that, at zero temperature and in the absence of shocks, GHD reduces to CHD, thus for the first time justifying its use from purely hydrodynamic principles. We show that sharp profiles, which appear in finite times in CHD, immediately dissolve into a higher hierarchy of reductions of GHD, with no sustained shock. CHD thereon fails to capture the correct hydrodynamics. We establish the correct hydrodynamic equations, which are finite-dimensional reductions of GHD characterized by multiple, disjoint Fermi seas. We further verify that at nonzero temperature, CHD fails at all nonzero times. Finally, we numerically confirm the emergence of hydrodynamics at zero temperature by comparing its predictions with a full quantum simulation performed using the NRG-TSA-ABACUS algorithm. The analysis is performed in the full interaction range, and is not restricted to either weak- or strong-repulsion regimes.<br />v1: 6+7 pages, 4 figures. v2: 6+9 pages, 7 figures. References added, discussion improved, title changed. v3: 6+9 pages, 7 figures, discussion further improved, references added

Details

ISSN :
10797114 and 00319007
Volume :
119
Database :
OpenAIRE
Journal :
Physical Review Letters
Accession number :
edsair.doi.dedup.....6ce69ea4f5c3de3e84553a1a291e6c88
Full Text :
https://doi.org/10.1103/physrevlett.119.195301