磁性Skyrmions:最新进展和应用

IF 2.3 Q3 NANOSCIENCE & NANOTECHNOLOGY IEEE Nanotechnology Magazine Pub Date : 2021-12-01 DOI:10.1109/mnano.2021.3113215
Namita Bindal, Arshid Nisar, Seema Dhull, B. Kaushik
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引用次数: 0

摘要

磁性skyrmions是在几种磁性材料中观察到的类似粒子的纳米拓扑自旋纹理。它们已成为传统自旋电子存储器和畴壁(DW)的替代品,并提供高存储密度、更稳健的稳定性、低临界电流和更高的可扩展性。最近的进展为它们在量子计算、逻辑电路和神经形态计算中的应用奠定了基础。借助电学方法,可以在设备兼容的材料中精确地创建、操纵和摧毁skyrmions。然而,磁性skyrmion可实现的最大速度和数据的可靠检测受到skyrmion-Hall效应(SkHE)的限制。其他问题包括低读取裕度和纳米线中缺乏适当的skyrmion运动控制。其中大多数可以通过开发新型材料来解决,例如反铁磁体;采用专门的制造技术;调整驱动电流分布;以及电路级工程。在这篇文章中,重点介绍了与磁性skyrmions及其在数据存储、逻辑计算和神经形态计算中的应用相关的理论和实验突破和挑战。
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Magnetic Skyrmions: Recent advances and applications
Magnetic skyrmions are particle-like, nanometer-sized topological spin textures observed in several magnetic materials. They have emerged as an alternative to conventional spintronic memories and domain walls (DWs) and offer high storage density, more robust stability, low critical currents, and increased scalability. Recent advances have set the stage for their use in quantum computing, logic circuits, and neuromorphic computing. With the aid of electrical methods, it is possible to precisely create, manipulate, and destroy skyrmions in device-compatible materials. However, the maximum speed achievable by magnetic skyrmions and the reliable detection of data have been restricted by the skyrmion Hall effect (SkHE). Other issues include a low read margin and a lack of proper skyrmion motion control in nanowires. Most of these can be addressed by exploiting novel materials, such as antiferromagnets; employing specialized fabrication techniques; tuning driving current profiles; and circuit-level engineering. In this article, theoretical and experimental breakthroughs and challenges relevant to magnetic skyrmions and their applications in data storage, logic computing, and neuromorphic computing are highlighted.
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来源期刊
IEEE Nanotechnology Magazine
IEEE Nanotechnology Magazine NANOSCIENCE & NANOTECHNOLOGY-
CiteScore
2.90
自引率
6.20%
发文量
46
期刊介绍: IEEE Nanotechnology Magazine publishes peer-reviewed articles that present emerging trends and practices in industrial electronics product research and development, key insights, and tutorial surveys in the field of interest to the member societies of the IEEE Nanotechnology Council. IEEE Nanotechnology Magazine will be limited to the scope of the Nanotechnology Council, which supports the theory, design, and development of nanotechnology and its scientific, engineering, and industrial applications.
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