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TOPOLOGICAL MATTER
by
Zhu, J.
, Serlin, M.
, Balents, L.
, Tschirhart, C. L.
, Polshyn, H.
, Young, A. F.
, Watanabe, K.
, Taniguchi, T.
, Zhang, Y.
2020
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Do you wish to request the book?
TOPOLOGICAL MATTER
by
Zhu, J.
, Serlin, M.
, Balents, L.
, Tschirhart, C. L.
, Polshyn, H.
, Young, A. F.
, Watanabe, K.
, Taniguchi, T.
, Zhang, Y.
2020
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Journal Article
TOPOLOGICAL MATTER
2020
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Overview
The quantum anomalous Hall (QAH) effect combines topology and magnetism to produce precisely quantized Hall resistance at zero magnetic field. We report the observation of a QAH effect in twisted bilayer graphene aligned to hexagonal boron nitride. The effect is driven by intrinsic strong interactions, which polarize the electrons into a single spin- and valley-resolved moiré miniband with Chern number C = 1. In contrast to magnetically doped systems, the measured transport energy gap is larger than the Curie temperature for magnetic ordering, and quantization to within 0.1% of the von Klitzing constant persists to temperatures of several kelvin at zero magnetic field. Electrical currents as small as 1 nanoampere controllably switch the magnetic order between states of opposite polarization, forming an electrically rewritable magnetic memory.
Publisher
American Association for the Advancement of Science
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