论文标题
电流控制的纳米磁写作,用于可重构镁晶体
Current-Controlled Nanomagnetic Writing for Reconfigurable Magnonic Crystals
论文作者
论文摘要
在不断增长的技术中,强烈相互交互的纳米磁阵列至关重要。跨越神经形态计算,控制超导涡流和可重新配置的镁化,这些阵列的效用和吸引力在于它们广泛的独特,稳定的磁化状态。 Different states exhibit different functional behaviours, making precise, reconfigurable state control an essential cornerstone of such systems.但是,很少有现有的方法可以扭转任意数组元素,在电气控制下,对于设备集成至关重要的方法甚至可以这样做。 我们通过相邻纳米线中的横向结构域壁的电流驱动运动来证明铁磁纳米兰州的选择性,可重构的磁反转。逆转技术在全电控制下运行,不依赖外部磁场,因此非常适合在许多宏伟,Spinonic,Spintronic和神经形态逻辑体系结构中进行设备集成。在这里,逆转技术被利用以实现两种完全固态可重构的宏伟晶体,提供宏伟的门控,滤波,类似晶体管的开关和峰转换,而不依赖于全球磁场。
Strongly-interacting nanomagnetic arrays are crucial across an ever-growing suite of technologies. Spanning neuromorphic computing, control over superconducting vortices and reconfigurable magnonics, the utility and appeal of these arrays lies in their vast range of distinct, stable magnetisation states. Different states exhibit different functional behaviours, making precise, reconfigurable state control an essential cornerstone of such systems. However, few existing methodologies may reverse an arbitrary array element, and even fewer may do so under electrical control, vital for device integration. We demonstrate selective, reconfigurable magnetic reversal of ferromagnetic nanoislands via current-driven motion of a transverse domain wall in an adjacent nanowire. The reversal technique operates under all-electrical control with no reliance on external magnetic fields, rendering it highly suitable for device integration across a host of magnonic, spintronic and neuromorphic logic architectures. Here, the reversal technique is leveraged to realise two fully solid-state reconfigurable magnonic crystals, offering magnonic gating, filtering, transistor-like switching and peak-shifting without reliance on global magnetic fields.