Materials Science and Engineering, School for Engineering of Matter, Transport and Energy, Arizona State University, Tempe, Arizona 85287, United States.
NISE Department, Max Planck Institute of Microstructure Physics, 06120 Halle, Germany.
ACS Nano. 2022 May 24;16(5):6960-7079. doi: 10.1021/acsnano.1c09150. Epub 2022 Apr 20.
Magnetism in two-dimensional (2D) van der Waals (vdW) materials has recently emerged as one of the most promising areas in condensed matter research, with many exciting emerging properties and significant potential for applications ranging from topological magnonics to low-power spintronics, quantum computing, and optical communications. In the brief time after their discovery, 2D magnets have blossomed into a rich area for investigation, where fundamental concepts in magnetism are challenged by the behavior of spins that can develop at the single layer limit. However, much effort is still needed in multiple fronts before 2D magnets can be routinely used for practical implementations. In this comprehensive review, prominent authors with expertise in complementary fields of 2D magnetism (, synthesis, device engineering, magneto-optics, imaging, transport, mechanics, spin excitations, and theory and simulations) have joined together to provide a genome of current knowledge and a guideline for future developments in 2D magnetic materials research.
二维(2D)范德华(vdW)材料中的磁性最近成为凝聚态研究中最有前途的领域之一,具有许多令人兴奋的新兴特性和广泛的应用潜力,从拓扑磁振子学到低功耗自旋电子学、量子计算和光通信。在发现后的短短时间内,二维磁铁已经发展成为一个丰富的研究领域,其中磁性的基本概念受到在单层极限下发展的自旋行为的挑战。然而,在二维磁铁可以常规用于实际应用之前,仍需要在多个方面进行大量的努力。在这篇全面的综述中,在二维磁性的互补领域(合成、器件工程、磁光、成像、输运、力学、自旋激发以及理论和模拟)具有专业知识的杰出作者们齐聚一堂,提供了当前知识的基因组,并为二维磁性材料研究的未来发展提供了指导。