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Reshaped Weyl fermionic dispersions driven by Coulomb interactions in MoTe2

Authors
Kang, S.-H.[Kang, S.-H.]Jeon, S.[Jeon, S.]Kim, H.-J.[Kim, H.-J.]Ko, W.[Ko, W.]Cho, S.[Cho, S.]Kang, S.H.[Kang, S.H.]Kim, S.W.[Kim, S.W.]Yang, H.[Yang, H.]Kim, H.W.[Kim, H.W.]Son, Y.-W.[Son, Y.-W.]
Issue Date
Jan-2022
Publisher
American Physical Society
Citation
Physical Review B, v.105, no.4
Indexed
SCIE
SCOPUS
Journal Title
Physical Review B
Volume
105
Number
4
URI
https://scholarworks.bwise.kr/skku/handle/2021.sw.skku/96662
DOI
10.1103/PhysRevB.105.045143
ISSN
2469-9950
Abstract
We report the direct evidence of impacts of the Coulomb interaction in a prototypical Weyl semimetal, MoTe2, that alter its bare bands in a wide range of energy and momentum. Our quasiparticle interference patterns measured using scanning tunneling microscopy are shown to match the joint density of states of quasiparticle energy bands including momentum-dependent self-energy corrections, while electronic energy bands based on the other simpler local approximations of the Coulomb interaction fail to explain neither the correct number of quasiparticle pockets nor the shape of their dispersions observed in our spectrum. With this, we predict a transition between type-I and type-II Weyl fermions with doping and resolve its disparate quantum oscillation experiments, thus highlighting the critical roles of Coulomb interactions in layered Weyl semimetals. © 2022 American Physical Society.
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