论文标题
在室温下电力生成和控制的抗磁磁性半键盘
Antiferromagnetic half-skyrmions electrically generated and controlled at room temperature
论文作者
论文摘要
受拓扑保护的磁纹理,例如天空,半骨气(Merons)及其反粒子,构成了磁性的微小旋转。它们是下一代内存设备中信息载体的有前途的候选人,因为使用电流诱导的旋转扭矩可以在很高的速度下有效地推动它们。抗铁磁体已被证明可以容纳这些纹理的版本,这些版本由于缺乏流浪场而引起的Terahertz动力学,自由运动的潜力,自由运动和尺寸缩放的改善,因此引起了极大的关注。在这里,我们表明可以在室温下生成拓扑自旋纹理,梅隆和抗晶体,并使用薄膜cumnas中的电脉冲可逆地移动,这是一种半金属抗fiferromagnet,是用于自旋应用的测试床系统。抗铁磁梅隆的电产生和操纵是实现抗铁磁薄膜的全部潜力的关键步骤,作为高密度,高速磁性记忆设备中的活性成分。
Topologically protected magnetic textures, such as skyrmions, half-skyrmions (merons) and their antiparticles, constitute tiny whirls in the magnetic order. They are promising candidates for information carriers in next-generation memory devices, as they can be efficiently propelled at very high velocities using current-induced spin torques. Antiferromagnets have been shown to host versions of these textures, which have gained significant attention because of their potential for terahertz dynamics, deflection free motion, and improved size scaling due to the absence of stray field. Here we show that topological spin textures, merons and antimerons, can be generated at room temperature and reversibly moved using electrical pulses in thin film CuMnAs, a semimetallic antiferromagnet that is a testbed system for spintronic applications. The electrical generation and manipulation of antiferromagnetic merons is a crucial step towards realizing the full potential of antiferromagnetic thin films as active components in high density, high speed magnetic memory devices.