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Get Free AccessInsights into the fundamental properties of graphene’s Dirac-Weyl fermions have emerged from studies of electron tunnelling transistors in which an atomically thin layer of hexagonal boron nitride (hBN) is sandwiched between two layers of high purity graphene. Here, we show that when a single defect is present within the hBN tunnel barrier, it can inject electrons into the graphene layers and its sharply defined energy level acts as a high resolution spectroscopic probe of electron-electron interactions in graphene. We report a magnetic field dependent suppression of the tunnel current flowing through a single defect below temperatures of ~2 K. This is attributed to the formation of a magnetically-induced Coulomb gap in the spectral density of electrons tunnelling into graphene due to electron-electron interactions.
Е. Е. Вдовин, M. T. Greenaway, Yurii N. Khanin, С. В. Морозов, O. Makarovsky, A. Patanè, Artem Mishchenko, Sergey Slizovskiy, Vladimir I. Fal’ko, A. K. Geǐm, Konstantin ‘kostya’ Novoselov, L. Eaves (2023). A magnetically-induced Coulomb gap in graphene due to electron-electron interactions. Communications Physics, 6(1), DOI: 10.1038/s42005-023-01277-y.
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Type
Article
Year
2023
Authors
12
Datasets
0
Total Files
0
Language
English
Journal
Communications Physics
DOI
10.1038/s42005-023-01277-y
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