Topological Hopf and Chain Link Semimetal States and Their Application to Co2MnGa

Topological semimetals can be classified by the connectivity and dimensionality of the band crossings in momentum space. The band crossings of a Dirac, Weyl, or an unconventional fermion semimetal are zero-dimensional (0D) points, whereas the band crossings of a nodal-line semimetal are one-dimensio...

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Veröffentlicht in:Physical review letters 2017-10, Vol.119 (15)
Hauptverfasser: Chang, Guoqing, Xu, Su-Yang, Zhou, Xiaoting, Huang, Shin-Ming, Singh, Bahadur, Wang, Baokai, Belopolski, Ilya, Yin, Jiaxin, Zhang, Songtian, Bansil, Arun, Lin, Hsin, Hasan, M. Zahid
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Sprache:eng
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Zusammenfassung:Topological semimetals can be classified by the connectivity and dimensionality of the band crossings in momentum space. The band crossings of a Dirac, Weyl, or an unconventional fermion semimetal are zero-dimensional (0D) points, whereas the band crossings of a nodal-line semimetal are one-dimensional (1D) closed loops. Here we propose that the presence of perpendicular crystalline mirror planes can protect three-dimensional (3D) band crossings characterized by nontrivial links such as a Hopf link or a coupled chain, giving rise to a variety of new types of topological semimetals. We show that the nontrivial winding number protects topological surface states distinct from those in previously known topological semimetals with a vanishing spin-orbit interaction. We also show that these nontrivial links can be engineered by tuning the mirror eigenvalues associated with the perpendicular mirror planes. Using first-principles band structure calculations, we predict the ferromagnetic full Heusler compound Co2MnGa as a candidate. Here, both Hopf link and chainlike bulk band crossings and unconventional topological surface states are identified.
ISSN:0031-9007
DOI:10.1103/PhysRevLett.119.156401