Topological corner states in bilayer and trilayer systems with vertically stacked topological heterostructures

被引:0
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作者
Ishida, Natsuko [1 ]
Ezawa, Motohiko [2 ]
Lu, Guangtai [1 ]
Lin, Wenbo [3 ]
Ota, Yasutomo [4 ]
Arakawa, Yasuhiko [5 ]
Iwamoto, Satoshi [1 ,6 ]
机构
[1] Research Center for Advanced Science and Technology, The University of Tokyo, 4-6-1 Komaba, Meguro-ku, Tokyo,153-8505, Japan
[2] Department of Applied Physics, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo,113-8656, Japan
[3] Institute of Integrated Research, Institute of Science Tokyo, 2-12-1 Ookayama, Meguro-ku, Tokyo,152-8550, Japan
[4] Department of Applied Physics and Physico-Informatics, Keio University, 3-14-1 Hiyoshi, Kohoku-ku, Yokohama, Kanagawa,223-8522, Japan
[5] Institute for Nano Quantum Information Electronics, The University of Tokyo, 4-6-1 Komaba, Meguro-ku, Tokyo,153-8505, Japan
[6] Institute of Industrial Science, The University of Tokyo, 4-6-1 Komaba, Meguro-ku, Tokyo,153-8505, Japan
关键词
Topological insulators;
D O I
10.1103/PhysRevB.111.115418
中图分类号
学科分类号
摘要
We investigate bilayer and trilayer systems composed of topologically distinct, vertically stacked layers, forming topological heterostructures based on the Benalcazar-Bernevig-Hughes model. We find that a topological phase transition induced by interlayer coupling significantly alters the number of corner states in these topological structures. Furthermore, we find that traditional nested Wilson loop analysis inaccurately classifies certain phases, leading us to evaluate multipole chiral numbers (MCNs) as a more appropriate topological invariant for this scenario. The MCNs not only enable accurate classification of topological phases but also directly correspond to the number of zero-energy corner states, effectively characterizing Z-class higher-order topological insulator phases. Our study proposes the concept of topological heterostructures, providing critical insights into the control of localized corner states within multilayer systems and expanding potential research directions avenues. © 2025 American Physical Society.
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