论文标题

2D可重构纳米型晶体中的镁弯曲,相移和干涉法

Magnonic bending, phase shifting and interferometry in a 2D reconfigurable nanodisk crystal

论文作者

Stenning, K. D., Gartside, J. C., Dion, T., Vanstone, A., Arroo, D. M., Branford, W. R.

论文摘要

强烈相互交互的纳米磁系统是下一代技术的关键,包括可重构镁和神经形态计算。在相邻的纳米元素之间控制磁化状态和局部耦合,可允许大量可重构功能和许多相关功能。但是,现有的设计通常无法量身定制在制作后的元素间耦合和纳米元素仅限于一对类似Ising的磁化状态。在这里,我们提出了一类新的可重新配置的可重新配置的镁晶体,该晶体融合了纳米词作为功能元素。磁性纳米虫在宏生和涡旋状态下至关重要,可以选择性地激活元素间耦合(Macrospin)或停用(Vortex)。通过Microstate Engineering,我们利用了可动纳米风险的独特耦合行为和宏伟的带状结构,以实现可重编程的巨元波引导,弯曲,门控和相位变化,跨2D网络。通过表现出XNOR逻辑功能的全麦克努子干涉仪,证明了基于纳米峰的镁对基于波浪的计算的潜力。在此,使用磁力显微镜尖端通过拓扑磁写作来实现局部微晶体控制。

Strongly-interacting nanomagnetic systems are pivotal across next-generation technologies including reconfigurable magnonics and neuromorphic computation. Controlling magnetisation state and local coupling between neighbouring nanoelements allows vast reconfigurable functionality and a host of associated functionalities. However, existing designs typically suffer from an inability to tailor inter-element coupling post-fabrication and nanoelements restricted to a pair of Ising-like magnetisation states. Here, we propose a new class of reconfigurable magnonic crystal incorporating nanodisks as the functional element. Magnetic nanodisks are crucially bistable in macrospin and vortex states, allowing inter-element coupling to be selectively activated (macrospin) or deactivated (vortex). Through microstate engineering, we leverage the distinct coupling behaviours and magnonic band structures of bistable nanodisks to achieve reprogrammable magnonic waveguiding, bending, gating and phase-shifting across a 2D network. The potential of nanodisk-based magnonics for wave-based computation is demonstrated via an all-magnon interferometer exhibiting XNOR logic functionality. Local microstate control is achieved here via topological magnetic writing using a magnetic force microscope tip.

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