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Shiyong Tan

Researcher at Fudan University

Publications -  51
Citations -  2079

Shiyong Tan is an academic researcher from Fudan University. The author has contributed to research in topics: Angle-resolved photoemission spectroscopy & Electronic structure. The author has an hindex of 11, co-authored 38 publications receiving 1775 citations.

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Interface-induced superconductivity and strain-dependent spin density waves in FeSe/SrTiO3 thin films.

TL;DR: It is demonstrated that the superconductivity occurs when the electrons transferred from the oxygen-vacant substrate suppress the otherwise pronounced SDWs in single-layer FeSe, and the phase diagram of FeSe is mapped out as a function of lattice constant, which contains all the essential physics of Fe-HTS.
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Interface-induced superconductivity and strain-dependent spin density wave in FeSe/SrTiO3 thin films

TL;DR: In this paper, the spin density wave (SDW) in FeSe films was investigated and the authors showed that the superconductivity occurs when the electrons transferred from the oxygen-vacant substrate suppress the otherwise most pronounced SDW in single layer FeSe.
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Observation of possible topological in-gap surface states in the Kondo insulator SmB6 by photoemission

TL;DR: Jiang et al. as discussed by the authors performed angle-resolved photoemission and its circular dichroism measurements, which suggest that the anomalies might be of topological origin, which might explain the low-temperature transport anomalies.
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Tuning the band structure and superconductivity in single-layer FeSe by interface engineering

TL;DR: In situ angle-resolved photoemission spectroscopy is used to investigate various FeSe-based heterostructures grown by molecular beam epitaxy, and it is uncovered that electronic correlations and superconducting gap-closing temperature (Tg) are tuned by interfacial effects.
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Emergence of Kondo lattice behavior in a van der Waals itinerant ferromagnet, Fe3GeTe2

TL;DR: This work expands the limit of ferromagnetic HF materials from f- to d-electron systems and illustrates the positive correlation between ferromagnetism and HF state in the 3d-electrons material, which is quite different from the f-Electron systems.