Wang Lingfei, Feng Qiyuan, Kim Yoonkoo, Kim Rokyeon, Lee Ki Hoon, Pollard Shawn D, Shin Yeong Jae, Zhou Haibiao, Peng Wei, Lee Daesu, Meng Wenjie, Yang Hyunsoo, Han Jung Hoon, Kim Miyoung, Lu Qingyou, Noh Tae Won
Center for Correlated Electron Systems, Institute for Basic Science (IBS), Seoul, Republic of Korea.
Department of Physics and Astronomy, Seoul National University, Seoul, Republic of Korea.
Nat Mater. 2018 Dec;17(12):1087-1094. doi: 10.1038/s41563-018-0204-4. Epub 2018 Nov 5.
Magnetic skyrmions are topologically protected whirling spin texture. Their nanoscale dimensions, topologically protected stability and solitonic nature, together are promising for future spintronics applications. To translate these compelling features into practical spintronic devices, a key challenge lies in achieving effective control of skyrmion properties, such as size, density and thermodynamic stability. Here, we report the discovery of ferroelectrically tunable skyrmions in ultrathin BaTiO/SrRuO bilayer heterostructures. The ferroelectric proximity effect at the BaTiO/SrRuO heterointerface triggers a sizeable Dzyaloshinskii-Moriya interaction, thus stabilizing robust skyrmions with diameters less than a hundred nanometres. Moreover, by manipulating the ferroelectric polarization of the BaTiO layer, we achieve local, switchable and nonvolatile control of both skyrmion density and thermodynamic stability. This ferroelectrically tunable skyrmion system can simultaneously enhance the integratability and addressability of skyrmion-based functional devices.
磁斯格明子是具有拓扑保护的涡旋自旋纹理。它们的纳米级尺寸、拓扑保护的稳定性和孤子性质,共同为未来的自旋电子学应用带来了希望。为了将这些引人注目的特性转化为实际的自旋电子器件,一个关键挑战在于实现对斯格明子特性的有效控制,如尺寸、密度和热力学稳定性。在此,我们报告在超薄BaTiO/SrRuO双层异质结构中发现了铁电可调谐斯格明子。BaTiO/SrRuO异质界面处的铁电近邻效应引发了可观的Dzyaloshinskii-Moriya相互作用,从而稳定了直径小于100纳米的稳健斯格明子。此外,通过操纵BaTiO层的铁电极化,我们实现了对斯格明子密度和热力学稳定性的局部、可切换和非易失性控制。这种铁电可调谐斯格明子系统可以同时提高基于斯格明子的功能器件的集成性和可寻址性。