Manifestation of correlated electronic structure in a kagome metal YbTi<sub>3</sub>Bi<sub>4</sub>
ORAL
Abstract
Kagome lattices have emerged as an ideal platform for exploring various exotic quantum phenomena such as correlated topological phases, frustrated lattice geometry, unconventional charge density wave orders, Chern quantum phases, superconductivity, etc. Here, we report the discovery of a new Ti-based kagome metal YbTi3Bi4 which is characterized using angle-resolved photoemission spectroscopy (ARPES) and magneto-transport, in combination with density functional theory calculations. Our ARPES results reveal the complex fermiology of this system along with the spectroscopic evidence of four flat bands. Furthermore, our electronic structure measurements show the presence of multiple van Hove singularities originating from Ti 3d orbitals. We have identified that the system exhibits topological nontriviality with surface Dirac cones at the Γ point and a bulk linearly dispersing gapped Dirac-like state at the K point as indicated by our theoretical calculations. These results establish YbTi3Bi4 as a novel platform for exploring the intersection of nontrivial topology, and electron correlation effects in the wider LnTi3Bi4 (Ln= lanthanide) family of materials.
*†M.N. acknowledges support from the Air Force Office of Scientific Research MURI (Grant No. FA9550-20-1-0322) and the National Science Foundation (NSF) CAREER award DMR-1847962.
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Publication: A. P. Sakhya, B. R. Ortiz, B. Ghosh, M. Sprague, M. I. Mondal, M. Matzelle, I. B. Elius, N. Valadez, D. G. Mandrus, and A. Bansil, "Observation of multiple flat bands and topological Dirac states in a new titanium based slightly distorted kagome metal YbTi3Bi4", arXiv preprint arXiv:2309.01176 (2023).
Presenters
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Anup Pradhan Sakhya
- University of Central Florida
- Department of Physics, University of Central Florida