Zheng Shi-Han, Wang Rui-Qiang, Zhong Min, Duan Hou-Jian
Guangdong Provincial Key Laboratory of Quantum Engineering and Quantum Materials, School of Physics and Telecommunication Engineering, South China Normal University, Guangzhou 510006, China.
Sci Rep. 2016 Nov 3;6:36106. doi: 10.1038/srep36106.
Currently, Weyl semimetals (WSMs) are drawing great interest as a new topological nontrivial phase. When most of the studies concentrated on the clean host WSMs, it is expected that the dirty WSM system would present rich physics due to the interplay between the WSM states and the impurities embedded inside these materials. We investigate theoretically the change of local density of states in three-dimensional Dirac and Weyl bulk states scattered off a quantum impurity. It is found that the quantum impurity scattering can create nodal resonance and Kondo peak/dip in the host bulk states, remarkably modifying the pristine spectrum structure. Moreover, the joint effect of the separation of Weyl nodes and the Friedel interference oscillation causes the unique battering feature. We in detail an- alyze the different contribution from the intra- and inter-node scattering processes and present various scenarios as a consequence of competition between them. Importantly, these behaviors are sensitive significantly to the displacement of Weyl nodes in energy or momentum, from which the distinctive fingerprints can be extracted to identify various semimetal materials experimentally by employing the scanning tunneling microscope.
目前,外尔半金属(WSMs)作为一种新的非平凡拓扑相正引起人们极大的兴趣。当大多数研究集中在纯净的主体WSMs时,由于WSM态与嵌入这些材料内部的杂质之间的相互作用,预计脏污的WSM系统会呈现出丰富的物理现象。我们从理论上研究了三维狄拉克和外尔体态中被量子杂质散射时的局域态密度变化。研究发现,量子杂质散射可在主体体态中产生节点共振和近藤峰/谷,显著改变原始的能谱结构。此外,外尔节点分离和弗里德尔干涉振荡的共同作用导致了独特的起伏特征。我们详细分析了节点内和节点间散射过程的不同贡献,并给出了它们之间竞争导致的各种情况。重要的是,这些行为对外尔节点在能量或动量上的位移非常敏感,由此可以提取出独特的特征,以便通过扫描隧道显微镜在实验中识别各种半金属材料。