受挫尖晶石ZnCr_{2}O_{4}和MgCr_{2}O_{4}的自旋-佩尔转变

IF 9 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Physical review letters Pub Date : 2025-02-28 DOI:10.1103/PhysRevLett.134.086702
Ludovic D C Jaubert, Yasir Iqbal, Harald O Jeschke
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引用次数: 0

摘要

铬尖晶石MgCr_{2}O_{4}和ZnCr_{2}O_{4}是高度受挫的焦绿石晶格反铁磁体的主要例子。实验已经仔细地证实,这两种材料在冷却时,在磁性上都会扭曲到较低的对称性和有序性。我们通过结合基于密度泛函理论的能量映射和经典蒙特卡罗模拟来研究这一过程的本质。我们首先计算了两种尖晶石的高温立方结构和低温四方和正交结构的精确海森堡-哈密顿参数。然后我们研究了高对称和低对称结构各自的有序温度。我们仔细地将我们的结果与实验事实进行了比较,发现我们的模拟与一种适应于三维的自旋-佩尔斯机制非常一致,其中结构畸变是由较低程度的挫折引起的磁能增益介导的。
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Spin-Peierls Transition in the Frustrated Spinels ZnCr_{2}O_{4} and MgCr_{2}O_{4}.

The chromium spinels MgCr_{2}O_{4} and ZnCr_{2}O_{4} are prime examples of the highly frustrated pyrochlore lattice antiferromagnet. Experiment has carefully established that both materials, upon cooling, distort to lower symmetry and order magnetically. We study the nature of this process by a combination of density-functional-theory-based energy mapping and classical Monte Carlo simulations. We first computationally establish precise Heisenberg Hamiltonian parameters for the high temperature cubic and the low temperature tetragonal and orthorhombic structures of both spinels. We then investigate the respective ordering temperatures of high symmetry and low symmetry structures. We carefully compare our results with experimental facts and find that our simulations are remarkably consistent with a type of spin-Peierls mechanism, adapted to three dimensions, where the structural distortion is mediated by a magnetic energy gain due to a lower degree of frustration.

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来源期刊
Physical review letters
Physical review letters 物理-物理:综合
CiteScore
16.50
自引率
7.00%
发文量
2673
审稿时长
2.2 months
期刊介绍: Physical review letters(PRL)covers the full range of applied, fundamental, and interdisciplinary physics research topics: General physics, including statistical and quantum mechanics and quantum information Gravitation, astrophysics, and cosmology Elementary particles and fields Nuclear physics Atomic, molecular, and optical physics Nonlinear dynamics, fluid dynamics, and classical optics Plasma and beam physics Condensed matter and materials physics Polymers, soft matter, biological, climate and interdisciplinary physics, including networks
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