Pawar Shweta, Duadi Hamootal, Fixler Dror
Faculty of Engineering and the Institute of Nanotechnology and Advanced Materials, Bar Ilan University, Ramat Gan 5290002, Israel.
Bar-Ilan Institute of Nanotechnology & Advanced Materials (BINA), Bar Ilan University, Ramat Gan 5290002, Israel.
Nanomaterials (Basel). 2023 Feb 2;13(3):598. doi: 10.3390/nano13030598.
The term "carbon-based spintronics" mostly refers to the spin applications in carbon materials such as graphene, fullerene, carbon nitride, and carbon nanotubes. Carbon-based spintronics and their devices have undergone extraordinary development recently. The causes of spin relaxation and the characteristics of spin transport in carbon materials, namely for graphene and carbon nanotubes, have been the subject of several theoretical and experimental studies. This article gives a summary of the present state of research and technological advancements for spintronic applications in carbon-based materials. We discuss the benefits and challenges of several spin-enabled, carbon-based applications. The advantages include the fact that they are significantly less volatile than charge-based electronics. The challenge is in being able to scale up to mass production.
“碳基自旋电子学”一词主要指在石墨烯、富勒烯、碳氮化物和碳纳米管等碳材料中的自旋应用。碳基自旋电子学及其器件近年来取得了非凡的发展。碳材料(即石墨烯和碳纳米管)中自旋弛豫的原因和自旋输运的特性一直是多项理论和实验研究的主题。本文总结了碳基材料在自旋电子学应用方面的研究现状和技术进展。我们讨论了几种基于碳的自旋应用的优势和挑战。优势包括它们比基于电荷的电子器件挥发性显著更低。挑战在于能否扩大规模进行大规模生产。