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Emergence of steady quantum transport in a superconducting processor

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arxiv 2411.06794 v1 pith:XBVWRWQB submitted 2024-11-11 quant-ph cond-mat.mes-hallcond-mat.stat-mech

classification quant-phcond-mat.mes-hallcond-mat.stat-mech
keywords quantumbathstransportnon-equilibriumsteadycurrentsdemonstrateemergence
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Non-equilibrium quantum transport is crucial to technological advances ranging from nanoelectronics to thermal management. In essence, it deals with the coherent transfer of energy and (quasi-)particles through quantum channels between thermodynamic baths. A complete understanding of quantum transport thus requires the ability to simulate and probe macroscopic and microscopic physics on equal footing. Using a superconducting quantum processor, we demonstrate the emergence of non-equilibrium steady quantum transport by emulating the baths with qubit ladders and realising steady particle currents between the baths. We experimentally show that the currents are independent of the microscopic details of bath initialisation, and their temporal fluctuations decrease rapidly with the size of the baths, emulating those predicted by thermodynamic baths. The above characteristics are experimental evidence of pure-state statistical mechanics and prethermalisation in non-equilibrium many-body quantum systems. Furthermore, by utilising precise controls and measurements with single-site resolution, we demonstrate the capability to tune steady currents by manipulating the macroscopic properties of the baths, including filling and spectral properties. Our investigation paves the way for a new generation of experimental exploration of non-equilibrium quantum transport in strongly correlated quantum matter.

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  1. Typical Positivity of Nonequilibrium Entropy Production for Pure States

    cond-mat.stat-mech 2024-11 conditional novelty 6.0 of 10

    For almost all pure states sampled from the Scrooge measure, entropy production is exponentially close to the ensemble value, so typical pure states obey the second law.

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