Interlayer electronic coupling on demand in a 2D magnetic semiconductor

When monolayers of two-dimensional (2D) materials are stacked into van der Waals structures, interlayer electronic coupling can introduce entirely new properties, as exemplified by recent discoveries of moiré bands that host highly correlated electronic states and quantum dot-like interlayer exciton...

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Veröffentlicht in:Nature materials 2021-12, Vol.20 (12), p.1657-1662
Hauptverfasser: Wilson, Nathan P., Lee, Kihong, Cenker, John, Xie, Kaichen, Dismukes, Avalon H., Telford, Evan J., Fonseca, Jordan, Sivakumar, Shivesh, Dean, Cory, Cao, Ting, Roy, Xavier, Xu, Xiaodong, Zhu, Xiaoyang
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Sprache:eng
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Zusammenfassung:When monolayers of two-dimensional (2D) materials are stacked into van der Waals structures, interlayer electronic coupling can introduce entirely new properties, as exemplified by recent discoveries of moiré bands that host highly correlated electronic states and quantum dot-like interlayer exciton lattices. Here we show the magnetic control of interlayer electronic coupling, as manifested in tunable excitonic transitions, in an A-type antiferromagnetic 2D semiconductor CrSBr. Excitonic transitions in bilayers and above can be drastically changed when the magnetic order is switched from the layered antiferromagnetic ground state to a field-induced ferromagnetic state, an effect attributed to the spin-allowed interlayer hybridization of electron and hole orbitals in the latter, as revealed by Green’s function–Bethe–Salpeter equation (GW-BSE) calculations. Our work uncovers a magnetic approach to engineer electronic and excitonic effects in layered magnetic semiconductors. Interlayer hybridization in 2D van der Waals materials can change their properties. Here, it is shown that the coupling in CrSBr can be changed from switching the magnetic order from antiferromagnetic to ferromagnetic states.
ISSN:1476-1122
1476-4660
DOI:10.1038/s41563-021-01070-8