English

Ubiquitous Ideal Spin-Orbit Coupling in a Screw Dislocation in Semiconductors

Materials Science 2018-08-15 v1

Abstract

We theoretically demonstrate that screw dislocation (SD), a 1D topological defect widely present in semiconductors, exhibits ubiquitously a new form of spin-orbit coupling (SOC) effect. Differing from the widely known conventional 2D Rashba-Dresselhaus (RD) SOC effect that typically exists at surfaces/interfaces, the deep-level nature of SD-SOC states in semiconductors readily makes it an ideal SOC. Remarkably, the spin texture of 1D SD-SOC, pertaining to the inherent symmetry of SD, exhibits a significantly higher degree of spin coherency than the 2D RD-SOC. Moreover, the 1D SD-SOC can be tuned by ionicity in compound semiconductors to ideally suppress spin relaxation, as demonstrated by comparative first-principles calculations of SDs in Si/Ge, GaAs, and SiC. Our findings therefore open a new door to manipulating spin transport in semiconductors by taking advantage of an otherwise detrimental topological defect.

Keywords

Cite

@article{arxiv.1801.09025,
  title  = {Ubiquitous Ideal Spin-Orbit Coupling in a Screw Dislocation in Semiconductors},
  author = {Lin Hu and Huaqing Huang and Zhengfei Wang and W. Jiang and Xiaojuan Ni and Yinong Zhou and V. Zielasek and M. G. Lagally and Bing Huang and Feng Liu},
  journal= {arXiv preprint arXiv:1801.09025},
  year   = {2018}
}

Comments

16 pages, 4 figures

R2 v1 2026-06-22T23:59:07.694Z