Zarzycki A, Anwar M S, Bali R, Potzger K, Krupinski M, Marszalek M
Institute of Nuclear Physics Polish Academy of Sciences Radzikowskiego 152 31-342 Krakow Poland.
Helmholtz-Zentrum Dresden-Rossendorf Bautzner Landstrasse 400 01328 Dresden Germany
RSC Adv. 2024 Nov 18;14(49):36763-36770. doi: 10.1039/d4ra06100d. eCollection 2024 Nov 11.
Direct magnetic writing of ferromagnetic nanoscale elements provides an alternative pathway for potential application in data storage or spintronic devices. Magnetic patterning due to local chemical disordering of FeAl thin films results in adjacent nanoscale regions that possess two different phases, a low-magnetization and high-coercive chemically ordered phase (non-irradiated ferromagnetic area, NIFM) and a high-magnetization and low-coercive chemically disordered phase (irradiated ferromagnetic area, IMF). Depending on the volume of NIFM and IFM phases, different interaction mechanisms were revealed. It was shown that the modulated films of the coexisting magnetic phases do not lead to exchange coupling in most cases. Evidence for exchange-spring behaviour, however, was found. Moreover, both magneto-structural phases at low temperatures show spin-glass-like properties. Understanding the influence of chemical ordering on magnetic properties is crucial for the advancement of the functionalities of spintronic devices and for the development of alloys with controllable magnetic properties.
铁磁纳米级元件的直接磁写入为数据存储或自旋电子器件的潜在应用提供了一条替代途径。由于FeAl薄膜的局部化学无序导致的磁图案化产生了相邻的纳米级区域,这些区域具有两个不同的相,一个是低磁化强度和高矫顽力的化学有序相(未辐照铁磁区域,NIFM),另一个是高磁化强度和低矫顽力的化学无序相(辐照铁磁区域,IMF)。根据NIFM和IFM相的体积,揭示了不同的相互作用机制。结果表明,在大多数情况下,共存磁相的调制薄膜不会导致交换耦合。然而,发现了交换弹簧行为的证据。此外,低温下的两个磁结构相都表现出类似自旋玻璃的性质。了解化学有序对磁性能的影响对于推进自旋电子器件的功能以及开发具有可控磁性能的合金至关重要。