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Evidence of Topological Surface State in Three-Dimensional Dirac Semimetal Cd(3)As(2)

The three-dimensional topological semimetals represent a new quantum state of matter. Distinct from the surface state in the topological insulators that exhibits linear dispersion in two-dimensional momentum plane, the three-dimensional semimetals host bulk band dispersions linearly along all direct...

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Detalles Bibliográficos
Autores principales: Yi, Hemian, Wang, Zhijun, Chen, Chaoyu, Shi, Youguo, Feng, Ya, Liang, Aiji, Xie, Zhuojin, He, Shaolong, He, Junfeng, Peng, Yingying, Liu, Xu, Liu, Yan, Zhao, Lin, Liu, Guodong, Dong, Xiaoli, Zhang, Jun, Nakatake, M., Arita, M., Shimada, K., Namatame, H., Taniguchi, M., Xu, Zuyan, Chen, Chuangtian, Dai, Xi, Fang, Zhong, Zhou, X. J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4138522/
https://www.ncbi.nlm.nih.gov/pubmed/25139455
http://dx.doi.org/10.1038/srep06106
Descripción
Sumario:The three-dimensional topological semimetals represent a new quantum state of matter. Distinct from the surface state in the topological insulators that exhibits linear dispersion in two-dimensional momentum plane, the three-dimensional semimetals host bulk band dispersions linearly along all directions. In addition to the gapless points in the bulk, the three-dimensional Weyl/Dirac semimetals are also characterized by “topologically protected” surface state with Fermi arcs on their surface. While Cd(3)As(2) is proposed to be a viable candidate of a Dirac semimetal, more investigations are necessary to pin down its nature. In particular, the topological surface state, the hallmark of the three-dimensional semimetal, has not been observed in Cd(3)As(2). Here we report the electronic structure of Cd(3)As(2) investigated by angle-resolved photoemission measurements on the (112) crystal surface and detailed band structure calculations. The measured Fermi surface and band structure show a good agreement with the band structure calculations with two bulk Dirac-like bands approaching the Fermi level and forming Dirac points near the Brillouin zone center. Moreover, the topological surface state with a linear dispersion approaching the Fermi level is identified for the first time. These results provide experimental indications on the nature of topologically non-trivial three-dimensional Dirac cones in Cd(3)As(2).