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三角形结构中磁涡旋自旋波模式的研究

Study of magnetic vortex spin wave mode in triangular structures
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摘要 具有手型和极性双重属性的磁涡旋结构,自发现以来就被视为有望成为下一代自旋电子学器件的可能载体之一.尤其近年来随着Dzyaloshinskii-Moriya相互作用的发现,在具有中心反演对称性破缺或强自旋轨道耦合的体系中,使得一般的面内磁涡旋具有更加多样的动力学行为.本文通过微磁学模拟的方法,系统研究了在等边三角形结构中磁涡旋能够稳定存在的条件,并在此基础上分别通过施加面内和面外两个方向的微波磁场来激励其振荡,其中除常见的面内旋转模式和面外呼吸模式外,还存在高频微波磁场下的分裂模式,以及呼吸旋转同步的自旋波模式.最后,通过改变体系中Dzyaloshinskii-Moriya有效场的强度来改变整个三角形中的磁结构,进而调控不同自旋波模式的本征频率.本文结果对研究自旋波模式的多样性具有一定的借鉴意义,并且为多类型的自旋波模式能够在相关自旋电子学器件的研发提供更多选择. As a kind of nanoscale magnetic structure,the magnetic vortex has the advantages of small size,easy integration,easy control,low driving current density,low heat loss,etc.Owing to its potential application value and research significance,it has received more and more attention since its discovery.The existence of the magnetic vortex is the result of the competition between the exchange energy and the magnetostatic energy in the system.The magnetization of magnetic vortex usually contains the in-plane part and the central region part,so it usually has dual properties of chirality and polarity.The chirality is related to the arrangement of the magnetization in the plane,which can be divided into clockwise direction and counterclockwise direction.Moreover,the polarities+1 and-1 respectively represent the magnetization in the central area of the magnetic vortex core along the+z axis and-z axis.On the one hand,the magnetic vortex can be used as an information carrier in the storage device by driving the polarity reversal,and has the advantages of fast reading and writing speed,easy erasing and rewriting.On the other hand,it is expected to be used in next-generation spintronic devices,such as spin nano-oscillators based on magnetic vortex,which can continuously output high-frequency microwave signals.To further enhance the applicability of magnetic vortex,the Dzyaloshinskii-Moriya interaction(DMI)is introduced into the system,with symmetry breaking or strong spin-orbit coupling,and its dynamic process can be regulated by changing the magnetic vortex structure.The DM effective field plays a role in forcing the adjacent magnetization to be along the perpendicular direction in the heterostructure system lacking interface inversion symmetry.Thus,the existence of DMI can make the in-plane magnetization oriented to the out-of-plane direction.In this work,the triangle-shape magnetic vortex structure is varied by changing the strength of DM effective field.The microwave magnetic fields are respectively applied along the in-plane direction and out-of-plane direction,and the eigenfrequencies are obtained by using fast Fourier transform.Next,we further explore the spin wave modes at different eigenfrequencies.Finally,we vary the intensity of DMI in the system to adjust different eigenfrequencies.These results open up possibilities for the development and application of magnetic vortex in spintronics.
作者 强进 何开宙 刘东妮 卢启海 韩根亮 宋玉哲 王向谦 Qiang Jin;He Kai-Zhou;Liu Dong-Ni;Lu Qi-Hai;Han Gen-Liang;Song Yu-Zhe;Wang Xiang-Qian(Key Laboratory of Sensor and Sensor Technology,Institute of Sensor Technology,Gansu Academy of Sciences,Lanzhou 730000,China)
出处 《物理学报》 SCIE EI CAS CSCD 北大核心 2022年第19期220-226,共7页 Acta Physica Sinica
基金 兰州市科技计划项目(批准号:2021-1-157) 国家自然科学基金地区基金(批准号:51761001) 甘肃省科技计划项目(批准号:20YF8GA125) 甘肃省科学院创新团队建设项目(批准号:2020CX005-01) 甘肃省科学院应用研究与开发项目(批准号:2018JK-02)资助的课题。
关键词 磁涡旋 自旋波模式 magnetic vortex spin wave mode
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