Prediction of ferroelectricity-driven Berry curvature enabling charge- and spin-controllable photocurrent in tin telluride monolayers

Authors
Kim, JeongwooKim, Kyoung-WhanShin, DongbinLee, Sang-HoonSinova, JairoPark, NoejungJin, Hosub
Issue Date
2019-09
Publisher
Nature Publishing Group
Citation
Nature Communications, v.10
Abstract
In symmetry-broken crystalline solids, pole structures of Berry curvature (BC) can emerge, and they have been utilized as a versatile tool for controlling transport properties. For example, the monopole component of the BC is induced by the time-reversal symmetry breaking, and the BC dipole arises from a lack of inversion symmetry, leading to the anomalous Hall and nonlinear Hall effects, respectively. Based on first-principles calculations, we show that the ferroelectricity in a tin telluride monolayer produces a unique BC distribution, which offers charge- and spin-controllable photocurrents. Even with the sizable band gap, the ferroelectrically driven BC dipole is comparable to those of small-gap topological materials. By manipulating the photon handedness and the ferroelectric polarization, charge and spin circular photogalvanic currents are generated in a controllable manner. The ferroelectricity in group-IV monochalcogenide monolayers can be a useful tool to control the BC dipole and the nonlinear optoelectronic responses.
Keywords
PHASE; DYNAMICS; 강유전성; 베리곡률; 광전류; 이차원물질
ISSN
2041-1723
URI
https://pubs.kist.re.kr/handle/201004/119651
DOI
10.1038/s41467-019-11964-6
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KIST Article > 2019
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