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Hidden orbital polarization in diamond, silicon, germanium, gallium arsenide and layered materials

Cited 26 time in Web of Science Cited 27 time in Scopus
Authors

Ryoo, Ji Hoon; Park, Cheol-Hwan

Issue Date
2017-05
Publisher
Nature Publishing Group
Citation
NPG Asia Materials, Vol.9 No.5, p. e382
Abstract
It was previously believed that the Bloch electronic states of non-magnetic materials with inversion symmetry cannot have finite spin polarizations. However, since the seminal work by Zhang et al. (Nat. Phys. 10, 387-393 (2014)) on local spin polarizations of Bloch states in non-magnetic, centrosymmetric materials, the scope of spintronics has been significantly broadened. Here, we show, using a framework that is universally applicable independent of whether hidden spin polarizations are small (e.g., diamond, Si, Ge and GaAs) or large (e.g., MoS2 and WSe2), that the corresponding quantity arising from orbital-instead of spin-degrees of freedom, the hidden orbital polarization is (i) much more abundant in nature since it exists even without spin-orbit coupling and (ii) more fundamental since the interband matrix elements of the site-dependent orbital angular momentum operator determine the hidden spin polarization. We predict that the hidden spin polarization of transition metal dichalcogenides is reduced significantly upon compression. We suggest experimental signatures of hidden orbital polarization from photoemission spectroscopies and demonstrate that the current-induced hidden orbital polarization may play a far more important role than its spin counterpart in antiferromagnetic information technology by calculating the current-driven antiferromagnetism in compressed silicon.
ISSN
1884-4049
Language
English
URI
https://hdl.handle.net/10371/147839
DOI
https://doi.org/10.1038/am.2017.67
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