Short-range order and hidden energy scale in geometrically frustrated magnets

IF 4.7 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Materials Advances Pub Date : 2025-01-10 DOI:10.1039/D4MA00914B
A. P. Ramirez and S. V. Syzranov
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Abstract

In geometrically frustrated (GF) magnets, conventional long-range order is suppressed due to the presence of primitive triangular structural units, and the nature of the ensuing ground state remains elusive. One class of candidate states, extensively sought in experiments and vigorously studied theoretically, is the quantum spin liquid (QSL), a magnetically-disordered state in which all spins participate in a quantum-coherent many-body state. Randomly located impurities, present in all materials, may prevent QSL formation and instead lead to the formation of a spin-glass state. In this article, we review available data on the specific heat, magnetic susceptibility, and neutron scattering in GF materials. Such data show that a pure GF magnet possesses a characteristic “hidden energy scale” significantly exceeded by the other microscopic energy scales in the material. When cooled down to a temperature below the hidden energy scale, a GF material develops significant short-range order that dominates its properties and, in particular, dictates the spin-glass transition temperature for experimentally accessible impurity densities. We review the manifestations of short-range order in the commonly observed thermodynamics quantities in GF materials, possible scenarios for the hidden energy scale, and related open questions.

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几何挫折磁体中的短程秩序和隐藏能量标度
在几何受挫(GF)磁体中,由于原始三角形结构单元的存在,传统的长程秩序被抑制,并且随之而来的基态的性质仍然难以捉摸。量子自旋液体(QSL)是一类候选状态,在实验中被广泛寻找,并在理论上得到了大力研究,这是一种所有自旋都参与量子相干多体态的磁无序状态。存在于所有材料中的随机位置的杂质可能会阻止QSL的形成,而导致自旋玻璃态的形成。在本文中,我们回顾了GF材料的比热、磁化率和中子散射的现有数据。这些数据表明,纯GF磁体具有明显超过材料中其他微观能量尺度的“隐藏能量尺度”特征。当冷却到低于隐藏能量尺度的温度时,GF材料会发展出显著的短程有序,这决定了其性质,特别是决定了实验可达到的杂质密度的自旋玻璃转变温度。本文综述了GF材料中常见的热力学量的短程有序表现,隐藏能量尺度的可能情况,以及相关的开放性问题。
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来源期刊
Materials Advances
Materials Advances MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
7.60
自引率
2.00%
发文量
665
审稿时长
5 weeks
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