Observation of giant spin-split Fermi-arc with maximal Chern number in the chiral topological semimetal PtGa

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作者
Mengyu Yao
Kaustuv Manna
Qun Yang
Alexander Fedorov
Vladimir Voroshnin
B. Valentin Schwarze
Jacob Hornung
S. Chattopadhyay
Zhe Sun
Satya N. Guin
Jochen Wosnitza
Horst Borrmann
Chandra Shekhar
Nitesh Kumar
Jörg Fink
Yan Sun
Claudia Felser
机构
[1] Max Planck Institute for Chemical Physics of Solids,Institute for Solid
[2] Helmholtz-Zentrum Berlin fur Materialien und Energie,State and Materials Physics
[3] Institute for Solid State Research,National Synchrotron Radiation Laboratory
[4] Leibniz IFW Dresden,undefined
[5] Dresden High Magnetic Field Laboratory (HLD-EMFL) and Würzburg-Dresden Cluster of Excellence ct.qmat,undefined
[6] Helmholtz-Zentrum Dresden-Rossendorf,undefined
[7] Technical University Dresden,undefined
[8] University of Science and Technology of China,undefined
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摘要
Non-symmorphic chiral topological crystals host exotic multifold fermions, and their associated Fermi arcs helically wrap around and expand throughout the Brillouin zone between the high-symmetry center and surface-corner momenta. However, Fermi-arc splitting and realization of the theoretically proposed maximal Chern number rely heavily on the spin-orbit coupling (SOC) strength. In the present work, we investigate the topological states of a new chiral crystal, PtGa, which has the strongest SOC among all chiral crystals reported to date. With a comprehensive investigation using high-resolution angle-resolved photoemission spectroscopy, quantum-oscillation measurements, and state-of-the-art ab initio calculations, we report a giant SOC-induced splitting of both Fermi arcs and bulk states. Consequently, this study experimentally confirms the realization of a maximal Chern number equal to ±4 in multifold fermionic systems, thereby providing a platform to observe large-quantized photogalvanic currents in optical experiments.
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