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Correlation-driven eightfold magnetic anisotropy in a two-dimensional oxide monolayer

Authors :
Cui, Zhangzhang
Grutter, Alexander J.
Zhou, Hua
Cao, Hui
Dong, Yongqi
Gilbert, Dustin A.
Wang, Jingyuan
Liu, Yi-Sheng
Ma, Jiaji
Hu, Zhenpeng
Guo, Jinghua
Xia, Jing
Kirby, Brian J.
Shafer, Padraic
Arenholz, Elke
Chen, Hanghui
Zhai, Xiaofang
Lu, Yalin
Source :
Sci. Adv. 6, eaay0114 (2020)
Publication Year :
2020

Abstract

Engineering magnetic anisotropy in two-dimensional systems has enormous scientific and technological implications. The uniaxial anisotropy universally exhibited by two-dimensional magnets has only two stable spin directions, demanding 180 degrees spin switching between states. We demonstrate a novel eightfold anisotropy in magnetic SrRuO3 monolayers by inducing a spin reorientation in (SrRuO3)1/(SrTiO3)N superlattices, in which the magnetic easy axis of Ru spins is transformed from uniaxial <001> direction (N = 1 and 2) to eightfold <111> directions (N = 3, 4 and 5). This eightfold anisotropy enables 71 and 109 degrees spin switching in SrRuO3 monolayers, analogous to 71 and 109 degrees polarization switching in ferroelectric BiFeO3. First-principle calculations reveal that increasing the SrTiO3 layer thickness induces an emergent correlation-driven orbital ordering, tuning spin-orbit interactions and reorienting the SrRuO3 monolayer easy axis. Our work demonstrates that correlation effects can be exploited to substantially change spin-orbit interactions, stabilizing unprecedented properties in two-dimensional magnets and opening rich opportunities for low-power, multi-state device applications.<br />Comment: 15+13 pages, 5+10 figures, including supplementary materials

Details

Database :
arXiv
Journal :
Sci. Adv. 6, eaay0114 (2020)
Publication Type :
Report
Accession number :
edsarx.2004.10939
Document Type :
Working Paper
Full Text :
https://doi.org/10.1126/sciadv.aay0114