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Hailong Fu

Researcher at Pennsylvania State University

Publications -  30
Citations -  837

Hailong Fu is an academic researcher from Pennsylvania State University. The author has contributed to research in topics: Quantum Hall effect & Bilayer graphene. The author has an hindex of 10, co-authored 27 publications receiving 639 citations. Previous affiliations of Hailong Fu include Peking University.

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Ising Superconductivity and Quantum Phase Transition in Macro-Size Monolayer NbSe2.

TL;DR: In this article, the authors have successfully prepared macro-size atomically flat monolayer NbSe2 films on bilayer graphene terminated surface of 6H-SiC(0001) substrates by a molecular beam epitaxy (MBE) method.
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Quantum Griffiths singularity of superconductor-metal transition in Ga thin films

TL;DR: The transport properties of atomically thin gallium films are measured and it is found that the films undergo superconductor-metal transitions with increasing magnetic field, which is consistent with the Griffiths singularity behavior.
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Observation of a Helical Luttinger Liquid in InAs/GaSb Quantum Spin Hall Edges.

TL;DR: Realization of a tunable Luttinger liquid offers a one-dimensional model system for future studies of predicted correlation effects and underscores the strong electron-electron interaction effect in transport of InAs/GaSb edge states.
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Observation of quantum Griffiths singularity and ferromagnetism at the superconducting LaAl O 3 / SrTi O 3 ( 110 ) interface

TL;DR: In this paper, the superconductor-metal transition driven by a perpendicular magnetic field in superconducting two-dimensional electron gas formed at the interface between band insulators was reported.
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Competing ν = 5/2 fractional quantum Hall states in confined geometry

TL;DR: Using measurements of tunneling between edge states, it is suggested that both the Abelian and non-Abelian states can be stable in the same device but under different conditions, and suggests that there is an intrinsic non- Abelian 5/2 ground state but that the appropriate confinement is necessary to maintain it.