Spontaneous ferromagnetism in magic angle twisted bilayer MoTe<sub>2</sub>
ORAL
Abstract
The recent realization of the fractional quantum anomalous Hall effect (FQAHE) in a twisted MoTe2 bilayer (tMoTe2) establishes a powerful platform for researching topological quantum many-body physics. A unique feature of the system is the existence of a wide range of twist angles (over 2o) that achieve a narrow bandwidth in the first Chern band, and thus FQAHE. However, for the second Chern band, theory suggests that the bandwidth varies rapidly but reaches a minimum near a magic angle of around 2.1o. It is predicted that exotic states may be realized by filling the second Chern band at this magic angle. Here, I present robust spontaneous ferromagnetism and thus broken time reversal symmetry at v = -3 for 2.1o tMoTe2. The observed ferromagnetic state is electrically tunable and covers a broad doping range near v= -3. In addition, we observe the ferromagnetism near v = -1 that continuously extends over v = -1.5, satisfying a prerequisite for engineering a 3/2 fractional Chern insulator state. Our results pave the way for engineering exotic correlated topological states in fractional Chern insulators.
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Presenters
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Christiano W Beach
University of Washington
Authors
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Christiano W Beach
University of Washington
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Weijie Li
University of Washington
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Julian Stewart
University of Washington
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William G Holtzmann
University of Washington
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Nicolas Regnault
Paris Sciences et Lettres University
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Xiaowei Zhang
University of Washington
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Andrei B Bernevig
Princeton University
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Liang Fu
Massachusetts Institute of Technology
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Ting Cao
University of Washington
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Di Xiao
University of Washington
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Xiaodong Xu
University of Washington
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Chaowei Hu
University of Washington, University of California, Los Angeles
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Jiun-Haw Chu
University of Washington