Spectroscopic tunability of kagome magnet Fe<sub>3</sub>Sn<sub>2</sub> thin films by magnetic field
ORAL
Abstract
Kagome materials, named after the corner-sharing hexagonal lattice structure, provide an excellent platform to study topological and correlated electronic states. Kagome magnet Fe3Sn2 exhibits or has been theoretically predicted to exhibit many exotic quantum states, including flatbands, massive Dirac fermions, giant spin-orbit tunability, helical nodal lines and switchable Weyl points. Among these phenomena, experimental evidence for the existence of switchable Weyl points has been difficult to achieve. We use molecular beam epitaxy to grow Fe3Sn2 thin films and identify the Fe3Sn2 phase from diffraction and magnetization measurements. Using scanning tunneling microscopy/spectroscopy, we observe multiple peaks in differential conductance (dI/dV) spectra around the Fermi level. The peaks disperse in energy when an out-of-plane magnetic field is applied. We discuss these observations in the context of Weyl points theoretically predicted to occur in this system in the vicinity of the Fermi level.
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Presenters
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Zheng Ren
Boston College
Authors
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Zheng Ren
Boston College
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Shrinkhala Sharma
Boston College
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Hong Li
Boston College
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He Zhao
Boston College
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Bryan Rachmilowitz
Boston College
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Faranak Bahrami
Boston College
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Fazel Tafti
Boston College
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Shiang Fang
Rutgers University, New Brunswick, Massachusetts Institute of Technology
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Madhav P Ghimire
Tribhuvan University, Kathmandu, Nepal, Tribhuvan University, Central Department of Physics, Tribhuvan University, Kirtipur 44613, Kathmandu, Nepal
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Ziqiang Wang
Boston College
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Ilija Zeljkovic
Boston College