Zhang Zhiheng, Sun Rong, Wang Zhongchang
School of Chemistry, Beihang University, Beijing 100191, China.
International Iberian Nanotechnology Laboratory (INL), Braga 4715-330, Portugal.
ACS Nano. 2025 Jan 14;19(1):187-228. doi: 10.1021/acsnano.4c14733. Epub 2025 Jan 6.
Two-dimensional (2D) ferromagnetic materials are subjects of intense research owing to their intriguing physicochemical properties, which hold great potential for fundamental research and spintronic applications. Specifically, 2D van der Waals (vdW) ferromagnetic materials retain both structural integrity and chemical stability even at the monolayer level. Moreover, due to their atomic thickness, these materials can be easily manipulated by stacking them with other 2D vdW ferroic and nonferroic materials, enabling precise control over their physical properties and expanding their functional applications. Consequently, 2D vdW ferromagnetic materials-based heterostructures offer a platform to tailor magnetic properties and explore advanced spintronic devices. This review aims to provide an overview of recent developments in emerging 2D vdW ferromagnetic materials-based heterostructures and devices. The fabrication approaches for 2D ferromagnetic vdW heterostructures are primarily summarized, followed by a review of two categories of heterostructures: ferromagnetic/ferroic and ferromagnetic/nonferroic vdW heterostructures. Subsequently, the progress made in modulating magnetic properties and emergence of various phenomena in these heterostructures is highlighted. Furthermore, the applications of such heterostructures in spintronic devices are discussed along with their future perspectives and potential directions in this exciting field.
二维(2D)铁磁材料因其引人入胜的物理化学性质而成为深入研究的对象,这些性质在基础研究和自旋电子学应用方面具有巨大潜力。具体而言,二维范德华(vdW)铁磁材料即使在单层水平也能保持结构完整性和化学稳定性。此外,由于其原子厚度,这些材料可以通过与其他二维vdW铁电和非铁电材料堆叠而轻松操控,从而能够精确控制其物理性质并扩展其功能应用。因此,基于二维vdW铁磁材料的异质结构提供了一个定制磁性能和探索先进自旋电子器件的平台。本综述旨在概述新兴的基于二维vdW铁磁材料的异质结构和器件的最新进展。主要总结了二维铁磁vdW异质结构的制备方法,随后回顾了两类异质结构:铁磁/铁电和铁磁/非铁电vdW异质结构。随后,强调了在调节这些异质结构的磁性能方面取得的进展以及各种现象的出现。此外,还讨论了此类异质结构在自旋电子器件中的应用以及它们在这个令人兴奋的领域中的未来前景和潜在方向。