Dou Pengwei, Zhang Jingyan, Guo Yaqin, Zhu Tao, Luo Jia, Zhao Guoping, Huang He, Yu Guoqiang, Zhao Yunchi, Qi Jie, Deng Xiao, Wang Yuanbo, Li Jialiang, Shen Jianxin, Zheng Xinqi, Wu Yanfei, Yang Hongxin, Shen Baogen, Wang Shouguo
School of Materials Science and Engineering, Beijing Advanced Innovation Center for Materials Genome Engineering, University of Science and Technology Beijing, Beijing 100083, China.
Songshan Lake Materials Laboratory, Dongguan, Guangdong 523808, China.
Nano Lett. 2023 Jul 26;23(14):6449-6457. doi: 10.1021/acs.nanolett.3c01192. Epub 2023 Jun 28.
Spin obit torque (SOT) driven magnetization switching has been used widely for encoding consumption-efficient memory and logic. However, symmetry breaking under a magnetic field is required to realize the deterministic switching in synthetic antiferromagnets with perpendicular magnetic anisotropy (PMA), which limits their potential applications. Herein, we report all electric-controlled magnetization switching in the antiferromagnetic Co/Ir/Co trilayers with vertical magnetic imbalance. Besides, the switching polarity could be reversed by optimizing the Ir thickness. By using the polarized neutron reflection (PNR) measurements, the canted noncollinear spin configuration was observed in Co/Ir/Co trilayers, which results from the competition of magnetic inhomogeneity. In addition, the asymmetric domain walls demonstrated by micromagnetic simulations result from introducing imbalance magnetism, leading to the deterministic magnetization switching in Co/Ir/Co trilayers. Our findings highlight a promising route to electric-controlled magnetism via tunable spin configuration, improve our understanding of physical mechanisms, and significantly promote industrial applications in spintronic devices.
自旋轨道矩(SOT)驱动的磁化翻转已被广泛用于编码高效节能的存储器和逻辑器件。然而,在具有垂直磁各向异性(PMA)的合成反铁磁体中,实现确定性翻转需要磁场下的对称性破缺,这限制了它们的潜在应用。在此,我们报道了在具有垂直磁失衡的反铁磁Co/Ir/Co三层膜中的全电控磁化翻转。此外,通过优化Ir层厚度可以反转翻转极性。利用极化中子反射(PNR)测量,在Co/Ir/Co三层膜中观察到倾斜的非共线自旋构型,这是由磁不均匀性竞争导致的。另外,微磁模拟表明的不对称畴壁是由引入失衡磁性导致的,从而实现了Co/Ir/Co三层膜中的确定性磁化翻转。我们的发现突出了一条通过可调自旋构型实现电控磁性的有前景的途径,增进了我们对物理机制的理解,并显著推动了自旋电子器件的工业应用。