S. X. M. Riberolles, Tianxiong Han, Tyler J. Slade, J. M. Wilde, A. Sapkota, Wei Tian, Qiang Zhang, D. L. Abernathy, L. D. Sanjeewa, S. L. Bud’ko, P. C. Canfield, R. J. McQueeney, B. G. Ueland
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引用次数: 0
摘要
预测卡戈枚化合物中的磁有序性为通过调整磁性来利用拓扑或平带物理特性提供了可能性。ErMn6Sn6 属于 RMn6Sn6(R = Sc、Y、Gd-Lu)化合物家族,具有磁性 kagome Mn 层、三角形 R 层和拓扑特性特征。利用单晶中子衍射和均场分析的结果,我们发现 ErMn6Sn6 位于临界边界附近,该临界边界分别为非磁性和磁性 R 层典型的螺旋磁有序态和铁磁有序态的分界线。我们发现层间磁相互作用和易平面锰磁各向异性与该家族的其他成员一致,因此预测存在一些与温度和磁场相关的共线、非共线和非共面磁相。我们的研究表明,Er 磁矩的热波动削弱了 Mn-Er 层间的磁相互作用,淬灭了 Er 磁各向异性,从而决定了磁相的稳定性。我们的研究结果为研究 RMn6Sn6 化合物中的狄拉克费米子的行为提供了一个起点,并勾勒出了多种可能性,这些可能性可以控制锰的自旋方向和现实空间的自旋手性。
New insight into tuning magnetic phases of RMn6Sn6 kagome metals
Predicting magnetic ordering in kagome compounds offers the possibility of harnessing topological or flat-band physical properties through tuning of the magnetism. Here, we examine the magnetic interactions and phases of ErMn6Sn6 which belongs to a family of RMn6Sn6, R = Sc, Y, Gd–Lu, compounds with magnetic kagome Mn layers, triangular R layers, and signatures of topological properties. Using results from single-crystal neutron diffraction and mean-field analysis, we find that ErMn6Sn6 sits close to the critical boundary separating the spiral-magnetic and ferrimagnetic ordered states typical for non-magnetic versus magnetic R layers, respectively. Finding interlayer magnetic interactions and easy-plane Mn magnetic anisotropy consistent with other members of the family, we predict the existence of a number of temperature and field dependent collinear, noncollinear, and noncoplanar magnetic phases. We show that thermal fluctuations of the Er magnetic moment, which act to weaken the Mn-Er interlayer magnetic interaction and quench the Er magnetic anisotropy, dictate magnetic phase stability. Our results provide a starting point and outline a multitude of possibilities for studying the behavior of Dirac fermions in RMn6Sn6 compounds with control of the Mn spin orientation and real-space spin chirality.
期刊介绍:
npj Quantum Materials is an open access journal that publishes works that significantly advance the understanding of quantum materials, including their fundamental properties, fabrication and applications.