论文标题

拓扑kagome磁铁中的自旋轨量子杂质

Spin-orbit quantum impurity in a topological kagome magnet

论文作者

Yin, Jia-Xin, Shumiya, Nana, Jiang, Yuxiao, Zhou, Huibin, Macam, Gennevieve, Zhang, Songtian S., Sura, Hano Omar Mohammad, Cheng, Zijia, Guguchia, Zurab, Li, Yangmu, Wang, Qi, Litskevich, Maksim, Belopolski, Ilya, Yang, Xian, Cochran, Tyler A., Chang, Guoqing, Zhang, Qi, Andersen, Brian M., Huang, Zhi-Quan, Chuang, Feng-Chuan, Lin, Hsin, Lei, Hechang, Wang, Ziqiang, Jia, Shuang, Hasan, M. Zahid

论文摘要

由单原子突触引起的量子状态是目前的材料和信息科学领域。最近,自旋轨道耦合相关的kagome磁铁正在成为新的拓扑量子材料,尽管单原子杂质的效果仍未开发。在这里,我们使用最先进的扫描隧道显微镜/光谱法(STM/s)来研究拓扑kagome磁铁CO3SN2S2中的原子鉴赏杂质,旨在支持自旋轨道量子状态。我们发现每种杂质都具有强烈局部的绑定状态。我们的系统磁化偏振隧道探针以-5UB的异常力矩揭示了其旋转的极化性质,这表明了其他轨道磁化。随着两个杂质之间的分离逐渐收缩,它们的结合状态相互作用并形成量化的分子轨道状态。由于几何,磁性和自旋轨道耦合的结合,三种相邻杂质的分子轨道进一步表现出了令人着迷的分裂,类似于拓扑Weyl fermion Line12,19的分裂。我们的工作证明了单个原子杂质在磁性和自旋轨道耦合之间的量子水平相互作用,该杂质在拓扑kagome磁体中提供了洞察力的杂质行为以及对信息科学的自旋轨道量子杂质的潜力。

Quantum states induced by single-atomic-impurities are the current frontier of material and information science. Recently the spin-orbit coupled correlated kagome magnets are emerging as a new class of topological quantum materials, although the effect of single-atomic impurities remains unexplored. Here we use state-of-the-art scanning tunneling microscopy/spectroscopy (STM/S) to study the atomic indium impurity in a topological kagome magnet Co3Sn2S2, which is designed to support the spin-orbit quantum state. We find each impurity features a strongly localized bound state. Our systematic magnetization-polarized tunneling probe reveals its spin-down polarized nature with an unusual moment of -5uB, indicative of additional orbital magnetization. As the separation between two impurities progressively shrinks, their respective bound states interact and form quantized molecular orbital states. The molecular orbital of three neighboring impurities further exhibits an intriguing splitting owing to the combination of geometry, magnetism, and spin-orbit coupling, analogous to the splitting of the topological Weyl fermion line12,19. Our work demonstrates the quantum-level interplay between magnetism and spin-orbit coupling at an individual atomic impurity, which provides insights into the emergent impurity behavior in a topological kagome magnet and the potential of spin-orbit quantum impurities for information science.

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