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扭曲双层 CrI 中的从头算自旋哈密顿量和拓扑非中心对称磁性

Ab Initio Spin Hamiltonian and Topological Noncentrosymmetric Magnetism in Twisted Bilayer CrI.

机构信息

Center for Theoretical Physics of Complex Systems, Institute for Basic Science, Daejeon 34126, Republic of Korea.

Department of Physics, Korea Advanced Institute of Science and Technology, Daejeon 34141, Republic of Korea.

出版信息

Nano Lett. 2023 Jul 12;23(13):6088-6094. doi: 10.1021/acs.nanolett.3c01529. Epub 2023 Jun 27.

Abstract

Twist engineering of van der Waals magnets has emerged as an outstanding platform for manipulating exotic magnetic states. However, the complicated form of spin interactions in the large moiré superlattice obstructs a concrete understanding of such spin systems. To tackle this problem, for the first time, we developed a generic ab initio spin Hamiltonian for twisted bilayer magnets. Our atomistic model reveals that strong AB sublattice symmetry breaking due to the twist introduces a promising route to realize the novel noncentrosymmetric magnetism. Several unprecedented features and phases are uncovered including the peculiar domain structure and skyrmion phase induced by noncentrosymmetricity. The diagram of those distinctive magnetic phases has been constructed, and the detailed nature of their transitions analyzed. Further, we established the topological band theory of moiré magnons relevant to each of these phases. By respecting the full lattice structure, our theory provides the characteristic features that can be detected in experiments.

摘要

扭曲范德瓦尔斯磁体的工程已成为操纵奇异磁态的杰出平台。然而,在大摩尔超晶格中复杂的自旋相互作用形式阻碍了对这类自旋系统的具体理解。为了解决这个问题,我们首次为扭曲双层磁体开发了一个通用的第一性原理自旋哈密顿量。我们的原子模型表明,由于扭曲导致的 AB 亚晶格对称性破缺为实现新型非中心对称磁性提供了一个很有前途的途径。我们发现了几个前所未有的特征和相,包括由非中心对称引起的特殊畴结构和螺旋相。构建了这些独特磁相的相图,并分析了它们的转变的详细性质。此外,我们还建立了与这些相相关的莫尔磁子的拓扑能带理论。通过尊重完整的晶格结构,我们的理论提供了可以在实验中检测到的特征。

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