凝聚态物理
自旋电子学
维数之咒
铁磁性
磁各向异性
各向异性
超晶格
材料科学
单层
异质结
范德瓦尔斯力
物理
纳米技术
磁场
磁化
量子力学
机器学习
计算机科学
分子
作者
Seung Gyo Jeong,Seong Won Cho,Sehwan Song,Jin Young Oh,Do Gyeom Jeong,Gyeongtak Han,Hu Young Jeong,Ahmed Yousef Mohamed,Woo‐Suk Noh,Sungkyun Park,Jong Seok Lee,Suyoun Lee,Young‐Min Kim,Deok–Yong Cho,Woo Seok Choi
出处
期刊:Nano Letters
[American Chemical Society]
日期:2024-06-03
卷期号:24 (26): 7979-7986
标识
DOI:10.1021/acs.nanolett.4c01536
摘要
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 1,500% improvement of 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.
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