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Emergent Hydrodynamics in Integrable Quantum Systems Out of Equilibrium

Olalla A. Castro-AlvaredoDepartment of Mathematics, City, University of London, Northampton Square, London EC1V 0HB, United KingdomBenjamin DoyonDepartment of Mathematics, King’s College London, Strand, London WC2R 2LS, United KingdomTakato YoshimuraDepartment of Mathematics, King’s College London, Strand, London WC2R 2LS, United Kingdom
2016en
ABI

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Understanding the general principles underlying strongly interacting quantum states out of equilibrium is one of the most important tasks of current theoretical physics. With experiments accessing the intricate dynamics of many-body quantum systems, it is paramount to develop powerful methods that encode the emergent physics. Up to now, the strong dichotomy observed between integrable and nonintegrable evolutions made an overarching theory difficult to build, especially for transport phenomena where spacetime profiles are drastically different. We present a novel framework for studying transport in integrable systems: hydrodynamics with infinitely many conservation laws. This bridges the conceptual gap between integrable and nonintegrable quantum dynamics, and gives powerful tools for accurate studies of spacetime profiles. We apply it to the description of energy transport between heat baths, and provide a full description of the current-carrying nonequilibrium steady state and the transition regions in a family of models including the Lieb-Liniger model of interacting Bose gases, realized in experiments.

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