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利用分数斯格明子管在磁性多层膜中对信息信号进行编码和复用。

Encoding and Multiplexing Information Signals in Magnetic Multilayers with Fractional Skyrmion Tubes.

作者信息

Chen Runze, Li Yu, Griggs Will, Zang Yuzhe, Pavlidis Vasilis F, Moutafis Christoforos

机构信息

Nano Engineering and Spintronic Technologies (NEST) Research Group, Department of Computer Science, The University of Manchester, Manchester M13 9PL, U.K.

Advanced Processor Technologies (APT) Research Group, Department of Computer Science, The University of Manchester, Manchester M13 9PL, U.K.

出版信息

ACS Appl Mater Interfaces. 2023 Jul 19;15(28):34145-34158. doi: 10.1021/acsami.3c01775. Epub 2023 Jul 10.

Abstract

Tailored magnetic multilayers (MMLs) provide skyrmions with enhanced thermal stability, leading to the possibility of skyrmion-based devices for room-temperature applications. At the same time, the search for additional stable topological spin textures has been under intense research focus. Besides their fundamental importance, such textures may expand the information encoding capability of spintronic devices. However, fractional spin texture states within MMLs in the vertical dimension are yet to be investigated. In this work, we demonstrate numerically fractional skyrmion tubes (FSTs) in a tailored MML system. We subsequently propose to encode sequences of information signals with FSTs as information bits in a tailored MML device. Micromagnetic simulations and theoretical calculations are used to verify the feasibility of hosting distinct FST states within a single device, and their thermal stability is investigated. A multilayer multiplexing device is proposed, where multiple sequences of the information signals can be encoded and transmitted based on the nucleation and propagation of packets of FSTs. Finally, pipelined information transmission and automatic demultiplexing are demonstrated by exploiting the skyrmion Hall effect and introducing voltage-controlled synchronizers and width-based track selectors. The findings indicate that FSTs can be potential candidates as information carriers for future spintronic applications.

摘要

定制的磁性多层膜(MMLs)为斯格明子提供了增强的热稳定性,从而使得基于斯格明子的器件有可能应用于室温环境。与此同时,寻找其他稳定的拓扑自旋纹理一直是研究的重点。除了其基本重要性外,此类纹理可能会扩展自旋电子器件的信息编码能力。然而,垂直维度的MMLs内的分数自旋纹理态尚未得到研究。在这项工作中,我们通过数值模拟展示了定制MML系统中的分数斯格明子管(FSTs)。随后,我们提议在定制的MML器件中,将FSTs作为信息位来编码信息信号序列。利用微磁模拟和理论计算来验证在单个器件中容纳不同FST态的可行性,并研究其热稳定性。我们提出了一种多层复用器件,其中基于FST包的成核和传播,可以对多个信息信号序列进行编码和传输。最后,通过利用斯格明子霍尔效应并引入压控同步器和基于宽度的轨道选择器,展示了流水线式信息传输和自动解复用。研究结果表明,FSTs有可能成为未来自旋电子应用的信息载体。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/351d/10360071/482a3e0eb103/am3c01775_0002.jpg

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