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Magnetocaloric effect and magnetic cooling near a field-induced quantum-critical point

机译:磁场感应的量子临界点附近的磁热效应和磁冷却

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摘要

The presence of a quantum-critical point (QCP) can significantly affect the thermodynamic properties of a material at finite temperatures T. This is reflected, e.g., in the entropy landscape S(T,r) in the vicinity of a QCP, yielding particularly strong variations for varying the tuning parameter r such as pressure or magnetic field B. Here we report on the determination of the critical enhancement of ∂S/∂B near a B-induced QCP via absolute measurements of the magnetocaloric effect (MCE), (∂T/∂B)S and demonstrate that the accumulation of entropy around the QCP can be used for efficient low-temperature magnetic cooling. Our proof of principle is based on measurements and theoretical calculations of the MCE and the cooling performance for a Cu2+-containing coordination polymer, which is a very good realization of a spin-½ antiferromagnetic Heisenberg chain—one of the simplest quantum-critical systems.
机译:量子临界点(QCP)的存在会显着影响材料在有限温度T下的热力学性质。例如,这反映在QCP附近的熵场S(T,r)中,特别是改变诸如压力或磁场B之类的调谐参数r的强烈变化。在此,我们报告通过磁热效应(MCE)的绝对测量确定B诱导的QCP附近的∂S/∂B的临界增强,( ∂T/∂B)S并证明QCP周围的熵积累可用于有效的低温磁冷却。我们的原理证明基于MCE的测量和理论计算以及含Cu 2 + 的配位聚合物的冷却性能,这是自旋½反铁磁海森堡链的很好实现-最简单的量子临界系统之一。

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