Two-dimensional Rashba semiconductors and inversion-asymmetric topological insulators in monolayer Janus MAA'ZxZ'(4-x) family
Jinghui Wei, Qikun Tian, XinTing Xu, Guangzhao Qin, Xu Zuo, Zhenzhen, Qin

TL;DR
This study systematically explores 135 Janus MAA'ZxZ'(4-x) monolayers, revealing numerous Rashba semiconductors and topological insulators with tunable spin textures and bandgaps, advancing spintronics and optoelectronic applications.
Contribution
It introduces a comprehensive first-principles investigation of the geometric stability, electronic structures, and topological phases of a large family of Janus monolayers, identifying new Rashba semiconductors and topological insulators.
Findings
26 Rashba semiconductors with spin splitting bands identified
Rashba constant correlates with electric field and SOC strength
Band inversion leads to topological phases and double Rashba splitting
Abstract
The Rashba effect in Janus structures, accompanied by nontrivial topology, plays an important role in spintronics and even photovoltaic applications. Herein, through first-principles calculations, we systematically investigate the geometric stability and electronic structures of 135 kinds of Janus MAA'ZxZ'(4-x) family derived from two-dimensional MA2Z4 (M=Mg, Ga, Sr; A=Al, Ga; Z=S, Se, Te) monolayers, and design numerous Rashba semiconductors and inversion-asymmetric topological insulators. Specifically, there are a total of 26 Rashba semiconductors with isolated spin splitting bands contributed by Se/Te-pz orbitals at conduction band minimum, and the magnitude of the Rashba constant correlates strongly with both the intrinsic electric field and the strength of spin-orbit coupling (SOC). As the atomic number increases, the bandgap of Janus MAA'ZxZ'(4-x) continually decreases until it…
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Taxonomy
TopicsTopological Materials and Phenomena · Diamond and Carbon-based Materials Research
