Topological Fermi-arc surface state covered by floating electrons on a two-dimensional electride
arXiv:2407.09153 · doi:10.1038/s41467-024-49841-6
Abstract
Two-dimensional electrides can acquire topologically non-trivial phases due to intriguing interplay between the cationic atomic layers and anionic electron layers. However, experimental evidence of topological surface states has yet to be verified. Here, via angle-resolved photoemission spectroscopy (ARPES) and scanning tunnelling microscopy (STM), we probe the magnetic Weyl states of the ferromagnetic electride C]^{2+}\cdot2e^{-}[Gd_{2} electride but also realizes a surface heterostructure that can host phenomena distinct from the bulk.
22 pages, 6 figures
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