Lattice relaxation, mirror symmetry and magnetic field effects on ultraflat bands in twisted trilayer graphene
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作者:
Zewen Wu
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Key Laboratory of Artificial Micro-and Nano-structures of the Ministry of Education,School of Physics and Technology,Wuhan UniversityKey Laboratory of Artificial Micro-and Nano-structures of the Ministry of Education,School of Physics and Technology,Wuhan University
Zewen Wu
[1
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Zhen Zhan
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Key Laboratory of Artificial Micro-and Nano-structures of the Ministry of Education,School of Physics and Technology,Wuhan UniversityKey Laboratory of Artificial Micro-and Nano-structures of the Ministry of Education,School of Physics and Technology,Wuhan University
Zhen Zhan
[1
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Shengjun Yuan
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Key Laboratory of Artificial Micro-and Nano-structures of the Ministry of Education,School of Physics and Technology,Wuhan UniversityKey Laboratory of Artificial Micro-and Nano-structures of the Ministry of Education,School of Physics and Technology,Wuhan University
Shengjun Yuan
[1
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机构:
[1] Key Laboratory of Artificial Micro-and Nano-structures of the Ministry of Education,School of Physics and Technology,Wuhan University
Twisted graphene multilayers exhibit strongly correlated insulating states and superconductivity due to the presence of ultraflat bands near the charge neutral point. In this paper, the response of ultraflat bands to lattice relaxation and a magnetic field in twisted trilayer graphene(tTLG) with different stacking arrangements is investigated by using a full tight-binding model. We show that lattice relaxations are indispensable for understanding the electronic properties of tTLG, in particular, of tTLG in the presence of mirror symmetry. Lattice relaxations renormalize the quasiparticle spectrum near the Fermi energy and change the localization of higher energy flat bands. Furthermore, different from the twisted bilayer graphene, the Hofstadter butterfly spectrum can be realized at laboratory accessible strengths of magnetic field. Our work verifies tTLG as a more tunable platform than the twisted bilayer graphene in strongly correlated phenomena.
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Univ Seoul, Dept Phys, Seoul 02504, South KoreaUniv Seoul, Dept Phys, Seoul 02504, South Korea
Leconte, Nicolas
Javvaji, Srivani
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Univ Seoul, Dept Phys, Seoul 02504, South KoreaUniv Seoul, Dept Phys, Seoul 02504, South Korea
Javvaji, Srivani
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An, Jiaqi
Samudrala, Appalakondaiah
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Univ Seoul, Dept Phys, Seoul 02504, South Korea
Indian Inst Technol Jodhpur, Dept Phys, NH 65 Nagaur Rd, Karwar 342037, Rajasthan, IndiaUniv Seoul, Dept Phys, Seoul 02504, South Korea
机构:
Ankara Univ, Dept Phys, Fac Sci, TR-06100 Ankara, TurkeyAnkara Univ, Dept Phys, Fac Sci, TR-06100 Ankara, Turkey
Kandemir, B. S.
Mogulkoc, A.
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Ankara Univ, Dept Phys, Fac Sci, TR-06100 Ankara, Turkey
Radboud Univ Nijmegen, Inst Mol & Mat, NL-6525 AJ Nijmegen, NetherlandsAnkara Univ, Dept Phys, Fac Sci, TR-06100 Ankara, Turkey
机构:
School of Physics and Technology, Wuhan University, Wuhan,430072, ChinaSchool of Physics and Technology, Wuhan University, Wuhan,430072, China
Zhan, Zhen
Zhang, Ya-Lei
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School of Physics and Technology, Wuhan University, Wuhan,430072, ChinaSchool of Physics and Technology, Wuhan University, Wuhan,430072, China
Zhang, Ya-Lei
Yuan, Sheng-Jun
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School of Physics and Technology, Wuhan University, Wuhan,430072, China
Wuhan Institute of Quantum Technology, Wuhan,430206, ChinaSchool of Physics and Technology, Wuhan University, Wuhan,430072, China