论文标题

电压控制的Skyrmionic互连与多个磁性信息载体

Voltage-Controlled Skyrmionic Interconnect with Multiple Magnetic Information Carriers

论文作者

Chen, Runze, Li, Yu, Pavlidis, Vasilis F., Moutafis, Christoforos

论文摘要

自从它们在室温下与技术相关系统观察以来,磁性天空一直是人们关注的焦点。最近,人们对磁铁中可能存在的其他准颗粒(例如Skyrmionium和抗粉刺岩(即双抗抗微敏感)对,具有稳定的旋转纹理,这些质质量可能越来越多,它们具有不同的拓扑特征。同时,下一个挑战和机会是研究在单个设备中使用多个磁准粒子作为下一代纳米计算的信息载体。在本文中,我们提出了一个自旋互连设备,其中多个信息信号序列是由Skyrmions,Skyrmioniums和Anti-Skyrmionites同时编码和传输的。所提出的自旋互连设备可以通过电压控制的磁性抗体(VCMA)门控同步器来管道,这些同步器的表现为中间寄存器。从理论上讲,我们可以通过VCMA栅极电压和适当的电流脉冲来有效调节互连吞吐量和透射能。通过仔细调整设备结构特性,我们的Spintronic互连设备与主流CMOS技术中的铜互连具有可比的能效。这项研究提供了有关将来的Spintronic应用中Skyrmionic设备的可能性的全新见解。

Magnetic skyrmions have been in the spotlight since their observation in technologically relevant systems at room temperature. More recently, there has been increasing interest in additional quasiparticles that may exist as stable/metastable spin textures in magnets, such as the skyrmionium and the anti-skyrmionite (i.e., a double-antiskyrmion-skyrmion pair) that have distinct topological characteristics. The next challenge and opportunity, at the same time, is to investigate the use of multiple magnetic quasiparticles as information carriers in a single device for next generation nanocomputing. In this paper, we propose a spintronic interconnect device where multiple sequences of information signals are encoded and transmitted simultaneously by skyrmions, skyrmioniums, and anti-skyrmionites. The proposed spintronic interconnect device can be pipelined via voltage-controlled-magnetic-anisotropy (VCMA) gated synchronisers that behave as intermediate registers. We demonstrate theoretically that the interconnect throughput and transmission energy can be effectively tuned by the VCMA gate voltage and appropriate electric current pulses. By carefully adjusting the device structure characteristics, our spintronic interconnect device exhibits comparable energy efficiency with copper interconnects in mainstream CMOS technologies. This study provides fresh insight into the possibilities of skyrmionic devices in future spintronic applications.

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