异质结
凝聚态物理
霍尔效应
拓扑(电路)
物理
材料科学
磁场
量子力学
电气工程
工程类
作者
Elizabeth Skoropata,John Nichols,Jong Mok Ok,Rajesh V. Chopdekar,Eun Sang Choi,Ankur Rastogi,Changhee Sohn,Xiang Gao,Sangmoon Yoon,Thomas Farmer,R. D. Desautels,Yongseong Choi,D. Haskel,J. W. Freeland,Satoshi Okamoto,Matthew Brahlek,Ho Nyung Lee
出处
期刊:Science Advances
[American Association for the Advancement of Science (AAAS)]
日期:2020-07-03
卷期号:6 (27)
被引量:61
标识
DOI:10.1126/sciadv.aaz3902
摘要
Chiral interactions in magnetic systems can give rise to rich physics manifested, for example, as nontrivial spin textures. The foremost interaction responsible for chiral magnetism is the Dzyaloshinskii-Moriya interaction (DMI), resulting from inversion symmetry breaking in the presence of strong spin-orbit coupling. However, the atomistic origin of DMIs and their relationship to emergent electrodynamic phenomena, such as topological Hall effect (THE), remain unclear. Here, we investigate the role of interfacial DMIs in 3d-5d transition metal-oxide-based LaMnO3/SrIrO3 superlattices on THE from a chiral spin texture. By additively engineering the interfacial inversion symmetry with atomic-scale precision, we directly link the competition between interfacial collinear ferromagnetic interactions and DMIs to an enhanced THE. The ability to control the DMI and resulting THE points to a pathway for harnessing interfacial structures to maximize the density of chiral spin textures useful for developing high-density information storage and quantum magnets for quantum information science.
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