Yang Dongsheng, Kim Taeheon, Lee Kyusup, Xu Chang, Liu Yakun, Wang Fei, Zhao Shishun, Kumar Dushyant, Yang Hyunsoo
Department of Electrical and Computer Engineering, National University of Singapore, Singapore, Singapore.
Electro-Medical Device Research Centre, Korea Electrotechnology Research Institute, Ansan, Republic of Korea.
Nat Commun. 2024 May 14;15(1):4046. doi: 10.1038/s41467-024-48431-w.
The ability to electrically manipulate antiferromagnetic magnons, essential for extending the operating speed of spintronic devices into the terahertz regime, remains a major challenge. This is because antiferromagnetic magnetism is challenging to perturb using traditional methods such as magnetic fields. Recent developments in spin-orbit torques have opened a possibility of accessing antiferromagnetic magnetic order parameters and controlling terahertz magnons, which has not been experimentally realised yet. Here, we demonstrate the electrical manipulation of sub-terahertz magnons in the α-FeO/Pt antiferromagnetic heterostructure. By applying the spin-orbit torques in the heterostructure, we can modify the magnon dispersion and decrease the magnon frequency in α-FeO, as detected by time-resolved magneto-optical techniques. We have found that optimal tuning occurs when the Néel vector is perpendicular to the injected spin polarisation. Our results represent a significant step towards the development of electrically tunable terahertz spintronic devices.
将自旋电子器件的运行速度扩展到太赫兹范围所必需的电操纵反铁磁磁振子的能力,仍然是一项重大挑战。这是因为使用磁场等传统方法来扰动反铁磁磁性具有挑战性。自旋轨道扭矩的最新进展为获取反铁磁磁序参数和控制太赫兹磁振子开辟了可能性,不过这尚未通过实验实现。在此,我们展示了在α-FeO/Pt反铁磁异质结构中对亚太赫兹磁振子的电操纵。通过在异质结构中施加自旋轨道扭矩,我们可以改变磁振子色散并降低α-FeO中的磁振子频率,这是通过时间分辨磁光技术检测到的。我们发现,当奈尔矢量垂直于注入的自旋极化时会出现最佳调谐。我们的结果代表了朝着开发电可调太赫兹自旋电子器件迈出的重要一步。