TY - JOUR
T1 - Observation of nodal line in non-symmorphic topological semimetal InBi
AU - Ekahana, Sandy Adhitia
AU - Wu, Shu Chun
AU - Jiang, Juan
AU - Okawa, Kenjiro
AU - Prabhakaran, Dharmalingam
AU - Hwang, Chan Cuk
AU - Mo, Sung Kwan
AU - Sasagawa, Takao
AU - Felser, Claudia
AU - Yan, Binghai
AU - Liu, Zhongkai
AU - Chen, Yulin
N1 - Publisher Copyright:
© 2017 IOP Publishing Ltd.
PY - 2017/6
Y1 - 2017/6
N2 - Topological nodal semimetal (TNS), characterized by its touching conduction and valence bands, is a newly discovered state of quantum matter which exhibits various exotic physical phenomena. Recently, a new type of TNS called topological nodal line semimetal (TNLS) is predicted where its conduction and valence band form a degenerate one-dimension line which is further protected by its crystal symmetry. In this work, we systematically investigated the bulk and surface electronic structure of the non-symmorphic, TNLS in InBi (which is also a type II Dirac semimetal) with strong spin-orbit coupling by using angle resolved photoemission spectroscopy. By tracking the crossing points of the bulk bands at the Brillouin zone boundary, we discovered the nodal-line feature along the kz direction, in agreement with the ab initio calculations and confirmed it to be a new compound in the TNLS family. Our discovery provides a new material platform for the study of these exotic topological quantum phases and paves the way for possible future applications.
AB - Topological nodal semimetal (TNS), characterized by its touching conduction and valence bands, is a newly discovered state of quantum matter which exhibits various exotic physical phenomena. Recently, a new type of TNS called topological nodal line semimetal (TNLS) is predicted where its conduction and valence band form a degenerate one-dimension line which is further protected by its crystal symmetry. In this work, we systematically investigated the bulk and surface electronic structure of the non-symmorphic, TNLS in InBi (which is also a type II Dirac semimetal) with strong spin-orbit coupling by using angle resolved photoemission spectroscopy. By tracking the crossing points of the bulk bands at the Brillouin zone boundary, we discovered the nodal-line feature along the kz direction, in agreement with the ab initio calculations and confirmed it to be a new compound in the TNLS family. Our discovery provides a new material platform for the study of these exotic topological quantum phases and paves the way for possible future applications.
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U2 - 10.1088/1367-2630/aa75a1
DO - 10.1088/1367-2630/aa75a1
M3 - Article
AN - SCOPUS:85021643892
SN - 1367-2630
VL - 19
JO - New Journal of Physics
JF - New Journal of Physics
IS - 6
M1 - 065007
ER -