空中骑兵
凝聚态物理
多铁性
铁电性
纳米点
材料科学
电场
铁磁性
自旋(空气动力学)
各向异性
纳米技术
拓扑(电路)
物理
光电子学
量子力学
电气工程
电介质
热力学
工程类
作者
Zhipeng Hou,Yadong Wang,Xiaoming Lan,Sai Li,Xuejin Wan,Fei Meng,Yangfan Hu,Zhen Fan,Chun Feng,Minghui Qin,Min Zeng,Xichao Zhang,Xiaoxi Liu,Xuewen Fu,Guanghua Yu,Guofu Zhou,Yan Zhou,Weisheng Zhao,Xingsen Gao,Jun‐ming Liu
标识
DOI:10.1002/adma.202107908
摘要
Magnetic skyrmions are topological swirling spin configurations that hold promise for building future magnetic memories and logic circuits. Skyrmionic devices typically rely on the electrical manipulation of a single skyrmion, but controllably manipulating a group of skyrmions can lead to more compact and memory-efficient devices. Here, an electric-field-driven cascading transition of skyrmion clusters in a nanostructured ferromagnetic/ferroelectric multiferroic heterostructure is reported, which allows a continuous multilevel transition of the number of skyrmions in a one-by-one manner. Most notably, the transition is non-volatile and reversible, which is crucial for multi-bit memory applications. Combined experiments and theoretical simulations reveal that the switching of skyrmion clusters is induced by the strain-mediated modification of both the interfacial Dzyaloshinskii-Moriya interaction and effective uniaxial anisotropy. The results not only open up a new direction for constructing low-power-consuming, non-volatile, and multi-bit skyrmionic devices, but also offer valuable insights into the fundamental physics underlying the voltage manipulation of skyrmion clusters.
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