Measurement of the electronic structure of a type-II topological Dirac semimetal candidate VAl3 using angle-resolved photoelectron spectroscopy
Tungsten (2022)
Abstract:
Type-II topological Dirac semimetals are topological quantum materials hosting Lorentz-symmetry breaking type-II Dirac fermions, which are tilted Dirac cones with various exotic physical properties, such as anisotropic chiral anomalies and novel quantum oscillations. Until now, only limited material systems have been confirmed by theory and experiments with the type-II Dirac fermions. Here, we investigated the electronic structure of a new type-II Dirac semimetal VAl3 with angle-resolved photoelectron spectroscopy. The measured band dispersions are consistent with the theoretical prediction, which suggests the Dirac points are located close to (at about 100 meV above) the Fermi level. Our work demonstrates a new type-II Dirac semimetal candidate system with different Dirac node configurations and application potentials.Direct observation of the spin-orbit coupling effect in magnetic Weyl semimetal Co3Sn2S2
NPJ QUANTUM MATERIALS 7:1 (2022) ARTN 11
Pressure-induced superconductivity and structure phase transition in Pt2HgSe3
NPJ QUANTUM MATERIALS 6:1 (2021) ARTN 98
Electronic structure and spin-orbit coupling in ternary transition metal chalcogenides Cu2 Tl X 2 ( X = Se, Te)
Chinese Physics B 31:3 (2021)
Abstract:
Ternary transition metal chalcogenides provide a rich platform to search and study intriguing electronic properties. Using angle-resolved photoemission spectroscopy and ab initio calculation, we investigate the electronic structure of Cu2TlX2(X = Se, Te), ternary transition metal chalcogenides with quasi-two-dimensional crystal structure. The band dispersions near the Fermi level are mainly contributed by the Te/Se p orbitals. According to our ab-initio calculation, the electronic structure changes from a semiconductor with indirect band gap in Cu2TlSe2to a semimetal in Cu2TlTe2, suggesting a band-gap tunability with the composition of Se and Te. By comparing ARPES experimental data with the calculated results, we identify strong modulation of the band structure by spin-orbit coupling in the compounds. Our results provide a ternary platform to study and engineer the electronic properties of transition metal chalcogenides related to large spin orbit coupling.Observation of electronic structure and electron-boson coupling in the low-dimensional superconductor Ta4Pd3Te16
PHYSICAL REVIEW B 104:22 (2021) ARTN L220501