Kong Deli, Kovács András, Charilaou Michalis, Altthaler Markus, Prodan Lilian, Tsurkan Vladimir, Meier Dennis, Han Xiaodong, Kézsmárki István, Dunin-Borkowski Rafal E
Ernst Ruska-Centre for Microscopy and Spectroscopy with Electrons, Forschungszentrum Jülich, Jülich 52425, Germany.
Department of Materials Science and Engineering, Southern University of Science and Technology, Shenzhen 518055, China.
ACS Nano. 2025 Mar 4;19(8):8142-8151. doi: 10.1021/acsnano.4c16603. Epub 2025 Feb 24.
The ability to control magnetism with strain offers innovative pathways for the modulation of magnetic domain configurations and for the manipulation of magnetic states in materials on the nanoscale. Although the effect of strain on magnetic domains has been recognized since the early work of C. Kittel, detailed local observations have been elusive. Here, we use mechanical strain to achieve reversible control of magnetic textures in a kagome-type FeSn ferromagnet without the use of an external electric current or magnetic field in situ in a transmission electron microscope at room temperature. We use Fresnel defocus imaging, off-axis electron holography and micromagnetic simulations to show that tensile strain modifies the structures of dipolar skyrmions and switches the magnetization between out-of-plane and in-plane configurations. We also present quantitative measurements of magnetic domain wall structures and their transformations as a function of strain. Our results demonstrate the fundamental importance of anisotropy effects and their interplay with magnetoelastic and magnetocrystalline energies, providing opportunities for the development of strain-controlled devices for spintronic applications.
利用应变控制磁性的能力为调制磁畴结构以及在纳米尺度上操纵材料中的磁态提供了创新途径。尽管自C. 基特尔早期工作以来,人们就已经认识到应变对磁畴的影响,但详细的局部观测一直难以实现。在此,我们利用机械应变在室温下于透射电子显微镜中原位实现了对一种 Kagome 型 FeSn 铁磁体中磁织构的可逆控制,且无需使用外部电流或磁场。我们使用菲涅耳离焦成像、离轴电子全息术和微磁模拟来表明,拉伸应变会改变偶极斯格明子的结构,并使磁化在面外和面内配置之间切换。我们还给出了磁畴壁结构及其随应变变化的定量测量结果。我们的结果证明了各向异性效应及其与磁弹和磁晶能量相互作用的根本重要性,为开发用于自旋电子学应用的应变控制装置提供了机会。