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Universal Magnetocaloric Effect near Quantum Critical Point of Magnon Bose-Einstein Condensation

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arxiv 2508.05750 v1 pith:BVDDFXR5 submitted 2025-08-07 cond-mat.str-el

Universal Magnetocaloric Effect near Quantum Critical Point of Magnon Bose-Einstein Condensation

classification cond-mat.str-el
keywords quantumuniversalcoolingcriticalmagnetocaloricbose-einsteincondensationcopper
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Bose-Einstein condensation (BEC), a macroscopic quantum phenomenon arising from phase coherence and bosonic statistics, has been realized in quantum magnets. Here, we report the observation of a universal magnetocaloric effect (MCE) near a BEC quantum critical point (QCP) in copper sulfate crystal ($CuSO_4 \cdot 5H_2O$). By conducting magnetocaloric and nuclear magnetic resonance measurements, we uncover a field-driven BEC QCP, evidenced by the universal scaling law $T_c \propto (B_c - B)^{2/3}$ and the perfect data collapse of the magnetic Gr\"uneisen ratio. Thermal excitation triggers a dimensional crossover to a 1D quantum-critical regime, where the MCE scaling strictly matches the universality class of 1D Fermi gases. Notably, the quantum-critical MCE enables cooling down to 12.8 mK without helium-3, with very fast thermal relaxation rate that is critical for high cooling power. This work demonstrates the universal MCE in magnon BEC systems, using a common copper sulfate compound as a paradigmatic example, and paves the way for next-generation sub-Kelvin cooling.

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Cited by 2 Pith papers

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    Spin supersolids featuring coexisting longitudinal spin order breaking lattice symmetry and transverse order breaking spin U(1) symmetry have been established in frustrated quantum magnets through consistent experimen...

  2. Emergent Spin Supersolids in Frustrated Quantum Materials

    cond-mat.str-el 2026-01 unverdicted

    A review consolidating experimental and numerical evidence for spin supersolid phases in frustrated triangular-lattice quantum magnets, and discussing their cooling and spintronic prospects.