OAK

Dimensionality Engineering of Magnetic Anisotropy from the Anomalous Hall Effect in Synthetic SrRuO3 Crystals

Metadata Downloads
Abstract
Magnetic anisotropy in atomically thin correlated heterostructures is essential for exploring quantum magnetic phases for next-generation spintronics. Whereas previous studies have mostly focused on van der Waals systems, here we investigate the impact of dimensionality of epitaxially grown correlated oxides down to the monolayer limit on structural, magnetic, and orbital anisotropies. By designing oxide superlattices with a correlated ferromagnetic SrRuO3 and nonmagnetic SrTiO3 layers, we observed modulated ferromagnetic behavior with the change of the SrRuO3 thickness. Especially, for three-unit-cell-thick layers, we observe a significant 1500% improvement of the coercive field in the anomalous Hall effect, which cannot be solely attributed to the dimensional crossover in ferromagnetism. The atomic-scale heterostructures further reveal the systematic modulation of anisotropy for the lattice structure and orbital hybridization, explaining the enhanced magnetic anisotropy. Our findings provide valuable insights into engineering the anisotropic hybridization of synthetic magnetic crystals, offering a tunable spin order for various applications. © 2024 American Chemical Society.
Author(s)
Jeong, Seung GyoCho, Seong WonSong, SehwanOh, Jin YoungJeong, Do GyeomHan, GyeongtakJeong, Hu YoungMohamed, Ahmed YousefNoh, Woo-SukPark, SungkyunLee, Jong SeokLee, SuyounKim, Young-MinCho, Deok-YongChoi, Woo Seok
Issued Date
2024-06
Type
Article
DOI
10.1021/acs.nanolett.4c01536
URI
https://scholar.gist.ac.kr/handle/local/9518
Publisher
American Chemical Society
Citation
Nano Letters, v.24, no.26, pp.7979 - 7986
ISSN
1530-6984
Appears in Collections:
Department of Physics and Photon Science > 1. Journal Articles
공개 및 라이선스
  • 공개 구분공개
파일 목록
  • 관련 파일이 존재하지 않습니다.

Items in Repository are protected by copyright, with all rights reserved, unless otherwise indicated.