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Evolution of Topological Phases in Atomically Thin WTe2 Films

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【作者】 乔昌仓許宸嘉张韬孙志明钱冬詹杨皓陈鹏

【Author】 Changcang Qiao;Chen-Chia Hsu;Tao Zhang;Zhiming Sun;Dong Qian;Yang-Hao Chan;Peng Chen;Key Laboratory of Artificial Structures and Quantum Control (Ministry of Education),Tsung-Dao Lee Institute,School of Physics and Astronomy,Shanghai Jiao Tong University;Institute of Atomic and Molecular Sciences,“Academia Sinica”;

【通讯作者】 詹杨皓;陈鹏;

【机构】 Key Laboratory of Artificial Structures and Quantum Control (Ministry of Education),Tsung-Dao Lee Institute,School of Physics and Astronomy,Shanghai Jiao Tong UniversityInstitute of Atomic and Molecular Sciences,“Academia Sinica”

【摘要】 Topological materials, ranging from topological insulators to semimetals, host many novel quantum phenomena, including the quantum spin Hall effect and topological Fermi arcs. Transitions between these topological phases have attracted considerable research interest. We performed angle-resolved photoemission spectroscopy on WTe2, from monolayer to bulk, and revealed the evolution of the electronic structure and the band gap. Notably,the gap observed in the monolayer system is suppressed in the three layers, where the film becomes metallic.Variations in the topological properties with thickness are demonstrated by first-principles calculations. The topological Z2 invariant is shown to oscillate between 1 and 0 upon addition of layers, originating from interlayer coupling-induced changes in band crossing. The system evolves into a Weyl semimetal when the conduction and valence bands touch near the Fermi level, and its topological nature is characterized by the Chern number. Our findings demonstrate the nonmonotonic dependence of topological states on dimensionality and how layer-driven electronic band reconfiguration leads to phase transitions in solids.

【Abstract】 Topological materials, ranging from topological insulators to semimetals, host many novel quantum phenomena, including the quantum spin Hall effect and topological Fermi arcs. Transitions between these topological phases have attracted considerable research interest. We performed angle-resolved photoemission spectroscopy on WTe2, from monolayer to bulk, and revealed the evolution of the electronic structure and the band gap. Notably,the gap observed in the monolayer system is suppressed in the three layers, where the film becomes metallic.Variations in the topological properties with thickness are demonstrated by first-principles calculations. The topological Z2 invariant is shown to oscillate between 1 and 0 upon addition of layers, originating from interlayer coupling-induced changes in band crossing. The system evolves into a Weyl semimetal when the conduction and valence bands touch near the Fermi level, and its topological nature is characterized by the Chern number. Our findings demonstrate the nonmonotonic dependence of topological states on dimensionality and how layer-driven electronic band reconfiguration leads to phase transitions in solids.

【基金】 Shanghai Jiao Tong University was supported by the Ministry of Science and Technology of China (Grant No. 2022YFA1402400);the National Natural Science Foundation of China (Grant No. 12374188);support from “the Ministry of Science and Technology”,“the Academia Sinica” (Project No. AS-CDA-114-M04);the Center for High Performance Computing in Taiwan
  • 【文献出处】 Chinese Physics Letters ,中国物理快报(英文版) , 编辑部邮箱 ,2026年05期
  • 【分类号】O469
  • 【下载频次】2
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