Temperature-driven topological transition in 1T'-MoTe2

被引:0
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作者
Ayelet Notis Berger
Erick Andrade
Alexander Kerelsky
Drew Edelberg
Jian Li
Zhijun Wang
Lunyong Zhang
Jaewook Kim
Nader Zaki
Jose Avila
Chaoyu Chen
Maria C. Asensio
Sang-Wook Cheong
Bogdan A. Bernevig
Abhay N. Pasupathy
机构
[1] Columbia University,Department of Physics
[2] Columbia University,Department of Applied Physics and Applied Mathematics
[3] Westlake Institute for Advanced Study,Department of Physics
[4] Princeton University,Laboratory for Pohang Emergent Materials and Max Plank POSTECH Center for Complex Phase Materials
[5] Max Planck POSTECH/Korea Research Initiative,Rutgers Center for Emergent Materials and Department of Physics and Astronomy
[6] Rutgers University,Department of Applied Physics and Applied Mathematics
[7] Columbia University,Laboratoire Pierre Aigrain
[8] Synchrotron SOLEIL Orme des Merisiers,undefined
[9] Saint Aubin BP 48,undefined
[10] Ecole Normale Supérieure-PSL Research University,undefined
[11] CNRS,undefined
[12] Université Pierre et Marie Curie-Sorbonne Universités,undefined
[13] Université Paris Diderot-Sorbonne Parice Cité,undefined
[14] Donostia International Physics Center,undefined
[15] Sorbonne Universités,undefined
[16] UPMC Univ Paris 06,undefined
[17] UMR 7589,undefined
[18] LPTHE,undefined
来源
npj Quantum Materials | / 3卷
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摘要
The topology of Weyl semimetals requires the existence of unique surface states. Surface states have been visualized in spectroscopy measurements, but their connection to the topological character of the material remains largely unexplored. 1T'-MoTe2, presents a unique opportunity to study this connection. This material undergoes a phase transition at 240 K that changes the structure from orthorhombic (putative Weyl semimetal) to monoclinic (trivial metal), while largely maintaining its bulk electronic structure. Here, we show from temperature-dependent quasiparticle interference measurements that this structural transition also acts as a topological switch for surface states in 1T'-MoTe2. At low temperature, we observe strong quasiparticle scattering, consistent with theoretical predictions and photoemission measurements for the surface states in this material. In contrast, measurements performed at room temperature show the complete absence of the scattering wavevectors associated with the trivial surface states. These distinct quasiparticle scattering behaviors show that 1T'-MoTe2 is ideal for separating topological and trivial electronic phenomena via temperature-dependent measurements.
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