论文标题

具有倾斜易于平面的抗铁磁绝缘子中有效的自旋轨道扭矩

Efficient Spin-Orbit Torques in an Antiferromagnetic Insulator with Tilted Easy Plane

论文作者

Zhang, Pengxiang, Chou, Chung-Tao, Yun, Hwanhui, McGoldrick, Brooke C., Hou, Justin T., Mkhoyan, K. Andre, Liu, Luqiao

论文摘要

抗铁磁体内的自旋纹理的电气操纵是开发具有较高速度和高设备密度的旋转型的新机会。然而,由于来自不同sublattices的复杂相互作用,将自旋电流注入抗铁磁体并实现有效的自旋轨道扭转诱导的开关仍然具有挑战性。同时,由于磁敏感性的降低,电流诱导的磁化动力学的性质和大小在抗铁磁体中的表征仍然很差,而虚假效应进一步使实验解释复杂化。在这项工作中,通过沿其非基质平面取向生长薄膜抗磁性绝缘子α-FE2O3,我们意识到一种配置,在该配置中,注射的自旋电流可以在倾斜易于的平面内稳健地旋转néel矢量,并具有与经典的Ferromagnets的效率相比的效率。自旋轨道扭矩效应在其他竞争机制中脱颖而出,并导致清晰的开关动力学。由于这种新机制,与通常采用的正交开关几何形状相反,我们通过沿同一通道施加正和负电流来实现双极抗抗铁磁开关,这是对设备应用更实用的几何形状。通过在防铁磁序上实现有效的自旋轨道扭矩控制,倾斜的易于平面的几何形状引入了一个新的平台,以定量了解抗fiferromagnets中的开关和振荡动力学。

Electrical manipulation of spin textures inside antiferromagnets represents a new opportunity for developing spintronics with superior speed and high device density. Injecting spin currents into antiferromagnets and realizing efficient spin-orbit-torque-induced switching is however still challenging due to the complicated interactions from different sublattices. Meanwhile, because of the diminishing magnetic susceptibility, the nature and the magnitude of current-induced magnetic dynamics remain poorly characterized in antiferromagnets, whereas spurious effects further complicate experimental interpretations. In this work, by growing a thin film antiferromagnetic insulator, α-Fe2O3, along its non-basal plane orientation, we realize a configuration where an injected spin current can robustly rotate the Néel vector within the tilted easy plane, with an efficiency comparable to that of classical ferromagnets. The spin-orbit torque effect stands out among other competing mechanisms and leads to clear switching dynamics. Thanks to this new mechanism, in contrast to the usually employed orthogonal switching geometry, we achieve bipolar antiferromagnetic switching by applying positive and negative currents along the same channel, a geometry that is more practical for device applications. By enabling efficient spin-orbit torque control on the antiferromagnetic ordering, the tilted easy plane geometry introduces a new platform for quantitatively understanding switching and oscillation dynamics in antiferromagnets.

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