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Prediction of Near-Room-Temperature Quantum Anomalous Hall Effect on Honeycomb Materials.

Authors :
Shu-Chun Wu
Guangcun Shan
Binghai Yan
Source :
Physical Review Letters. 12/19/2014, Vol. 113 Issue 25, p256401-1-256401-5. 5p.
Publication Year :
2014

Abstract

Recently, the long-sough quantum anomalous Hall effect was realized in a magnetic topological insulator. However, the requirement of an extremely low temperature (approximately 30 mK) hinders realistic applications. Based on ah initio band structure calculations, we propose a quantum anomalous Hall platform with a large energy gap of 0.34 and 0.06 eV on honeycomb lattices comprised of Sn and Ge, respectively. The ferromagnetic (FM) order forms in one sublattice of the honeycomb structure by controlling the surface functionalization rather than dilute magnetic doping, which is expected to be visualized by spin polarized STM in experiment. Strong coupling between the inherent quantum spin Hall state and ferromagnetism results in considerable exchange splitting and, consequently, an FM insulator with a large energy gap. The estimated mean-field Curie temperature is 243 and 509 K for Sn and Ge lattices, respectively. The large energy gap and high Curie temperature indicate the feasibility of the quantum anomalous Hall effect in the near-room-temperature and even room-temperature regions. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00319007
Volume :
113
Issue :
25
Database :
Academic Search Index
Journal :
Physical Review Letters
Publication Type :
Academic Journal
Accession number :
100329024
Full Text :
https://doi.org/10.1103/PhysRevLett.113.256401