Ma Chunmei, Wang Shiyao, Gao Chenguang, Wang Junjie
State Key Laboratory of Solidification Processing, Northwestern Polytechnical University, Xi'an, China.
School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an, China.
Sci Technol Adv Mater. 2024 Oct 9;25(1):2404384. doi: 10.1080/14686996.2024.2404384. eCollection 2024.
Two-dimensional (2D) magnetic materials with high critical temperatures (  ) and robust magnetic anisotropy energies (MAE) hold significant potential for spintronic applications. However, most of 2D magnetic materials are derived from the van der Waals (vdW) layered bulks, which greatly limits the synthesis of 2D magnetic materials. Here, 2D MB (M = Cr, Mn, and Fe; B = Boron), derived from hexagonal and orthorhombic MAlB phases by selectively etching Al layers, was studied for its structural stability, electronic structure, and magnetic properties. By utilizing  calculations and Monte Carlo simulations, we found that the orthorhombic CrB shows ferromagnetic (FM) metal and possesses an in-plane magnetic easy axis, while the remaining hexagonal and orthorhombic MB structures exhibit antiferromagnetic (AFM) metals with a magnetic easy axis which is perpendicular to the two-dimensional plane. The critical temperatures of these 2D MB structures are found to be above the 130 K. Notably, the ort-MnB possesses highest   (600 K) and strongest MAE (220 µeV/atom) among these borides-based 2D magnetic materials. Our findings reveal that the 2D MB compounds exhibit much better resistance to deformation compared to MB MBenes and other 2D magnetic materials. The combination of high critical temperature, robust MAE, and excellent mechanical properties makes 2D MnB monolayer exhibits a favorable potential for spintronic applications. Our research also sheds light on the magnetic coupling mechanism of 2D MB, providing valuable insights into its fundamental characteristics.
具有高临界温度(  )和强大磁各向异性能量(MAE)的二维(2D)磁性材料在自旋电子学应用中具有巨大潜力。然而,大多数二维磁性材料源自范德华(vdW)层状块体,这极大地限制了二维磁性材料的合成。在此,通过选择性蚀刻铝层从六方和正交MAlB相衍生而来的二维MB(M = Cr、Mn和Fe;B = 硼),对其结构稳定性、电子结构和磁性进行了研究。通过利用  计算和蒙特卡罗模拟,我们发现正交CrB呈现铁磁(FM)金属且具有面内易磁化轴,而其余六方和正交MB结构呈现反铁磁(AFM)金属,其易磁化轴垂直于二维平面。这些二维MB结构的临界温度被发现高于130 K。值得注意的是,在这些基于硼化物的二维磁性材料中,ort-MnB具有最高的  (600 K)和最强的MAE(220 μeV/原子)。我们的研究结果表明,与MB MBenes和其他二维磁性材料相比,二维MB化合物表现出更好的抗变形能力。高临界温度、强大的MAE和优异的机械性能相结合,使得二维MnB单层在自旋电子学应用中展现出良好的潜力。我们的研究还揭示了二维MB的磁耦合机制,为其基本特性提供了有价值的见解。