用于神经形态计算的电压控制skyrmion操作室

IF 12.2 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Zulfidin Khodzhaev, Jean Anne C. Incorvia
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引用次数: 0

摘要

电压控制磁离子操纵已成为设计高密度和低功耗磁性器件的一种有前途的方法。本文研究了磁skyrmion操纵室用于此类设备的潜力,重点是在神经形态计算系统中的应用。本文综合分析了磁陀螺的性质、特点、操纵技术及其在磁性器件中的适用性。研究结果表明,在高密度数据存储、低功率自旋电子器件和适应性神经形态计算系统等应用中,电压控制的skyrmion操作室比传统技术具有显著优势。这些优势源于skyrmions的独特特性,包括它们的拓扑稳定性、纳米级尺寸和通过电压控制的有效操作。此外,skyrion操纵室的动态重排能力使其成为实现适应性神经形态架构和低功耗skyrion突触设备的理想选择。该研究为进一步研究和开发skyrmion操纵室提供了基础,以实现其在神经形态计算系统中的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Voltage-controlled skyrmion manipulation chambers for neuromorphic computing
Voltage-controlled magnetic skyrmion manipulation has emerged as a promising approach for designing high-density and low-power magnetic devices. This paper investigates the potential of magnetic skyrmion manipulation chambers for such devices, focusing on applications in neuromorphic computing systems. Here, a comprehensive analysis of the properties and characteristics of magnetic skyrmions, their manipulation techniques, and their suitability for magnetic devices is presented. The findings suggest that voltage-controlled skyrmion manipulation chambers have significant advantages over conventional technologies for applications such as high-density data storage, low-power spintronic devices, and adaptable neuromorphic computing systems. These advantages stem from the unique properties of skyrmions, including their topological stability, nanoscale dimensions, and efficient manipulation through voltage control. Furthermore, the dynamic rearrangement capabilities of skyrmion manipulation chambers make them ideal for implementing adaptable neuromorphic architectures and low-power skyrmion-based synaptic devices. This study provides a foundation for further research and development in skyrmion manipulation chambers to realize their potential in neuromorphic computing systems.
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来源期刊
Current Opinion in Solid State & Materials Science
Current Opinion in Solid State & Materials Science 工程技术-材料科学:综合
CiteScore
21.10
自引率
3.60%
发文量
41
审稿时长
47 days
期刊介绍: Title: Current Opinion in Solid State & Materials Science Journal Overview: Aims to provide a snapshot of the latest research and advances in materials science Publishes six issues per year, each containing reviews covering exciting and developing areas of materials science Each issue comprises 2-3 sections of reviews commissioned by international researchers who are experts in their fields Provides materials scientists with the opportunity to stay informed about current developments in their own and related areas of research Promotes cross-fertilization of ideas across an increasingly interdisciplinary field
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