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Critical phenomena in one dimension from a Bethe ansatz perspective

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arxiv 1408.4473 v2 pith:6B2WIDUT submitted 2014-08-20 cond-mat.quant-gas

classification cond-mat.quant-gas
keywords quantumphenomenaansatzatomsbethebosecriticaldevelopments
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This article briefly reviews recent theoretical developments in quantum critical phenomena in one-dimensional (1D) integrable quantum gases of cold atoms. We present a discussion on quantum phase transitions, universal thermodynamics, scaling functions and correlations for a few prototypical exactly solved models, such as the Lieb-Liniger Bose gas, the spin-1 Bose gas with antiferromagnetic spin-spin interaction, the two-component interacting Fermi gas as well as spin-3/2 Fermi gases. We demonstrate that their corresponding Bethe ansatz solutions provide a precise way to understand quantum many-body physics, such as quantum criticality, Luttinger liquids, the Wilson ratio, Tan's Contact, etc. These theoretical developments give rise to a physical perspective using integrability for uncovering experimentally testable phenomena in systems of interacting bosonic and fermonic ultracold atoms confined to 1D.

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  1. Sound attenuation and velocity shift in antiferromagnetic spin-1/2 chains

    cond-mat.str-el 2026-07 conditional novelty 5.0 of 10

    In a spin-1/2 XXZ chain, the sound-velocity shift is determined by derivatives of the spin-chain free energy, and ultrasound attenuation obeys a universal T^3 f(uk/T) scaling in the Luttinger-liquid regime.

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