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A microscopic refrigeration process triggered through spin-crossover mechanism

机译:通过自旋交叉机制触发的微观制冷过程

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摘要

We report the giant barocaloric effect determined in a spin-crossover system using a microscopic model. Compared with the widely used gas compression-expansion refrigeration technology, field induced refrigeration in solid materials reduces environmental damages and improves the energy efficiency. The origin of the giant effect was ascribed to the entropic phonon contribution arising from low spin to high spin phase transition, induced by a pressure change. Here, we show that for the applied pressure variation from 1 bar to 4.1 kbar, the isothermal entropy change (ΔS_T) in a one-dimensional spin crossover system [Fe(hyptrz)_3](4-chlorophenylsulfonate)_2H_2O achieves a maximum value of 55.8 J mol~(-1) at 191K, leading to a huge refrigerant capacity of 2160 J moI~(-1). Our results were compared with the results of other giant solid refrigerant materials such as (NH_4)_2SO_4, Gd_5Si_2Ge_2, and Gd_5[Si_(0.43)Ge_(0,57)]_4.
机译:我们报告使用显微镜模型在自旋交叉系统中确定的巨大压力效应。与广泛使用的气体压缩-膨胀制冷技术相比,固体材料中的现场感应制冷可减少环境破坏并提高能源效率。巨大效应的起因是由于压力变化引起的从低自旋到高自旋相变的熵声子贡献。在这里,我们表明,对于从1 bar到4.1 kbar的施加压力变化,一维自旋交叉系统[Fe(hyptrz)_3](4-氯苯基磺酸盐)_2H_2O的等温熵变(ΔS_T)达到最大值在191K时为55.8 J mol〜(-1),导致2160 J moI〜(-1)的巨大制冷剂容量。我们的结果与其他大型固体制冷剂材料,例如(NH_4)_2SO_4,Gd_5Si_2Ge_2和Gd_5 [Si_(0.43)Ge_(0,57)] _ 4的结果进行了比较。

著录项

  • 来源
    《Applied Physics Letters》 |2017年第18期|181909.1-181909.4|共4页
  • 作者

    P. J. von Ranke;

  • 作者单位

    Dep. de Eletrônica Quântica, Instituto de Fisica, Universidade do Estado do Rio de Janeiro UERJ, Rua São Francisco Xavier, 524,20550-013 Rio de Janeiro, RJ, Brazil;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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