The effect of Ar+ and N+ ion irradiation on the thermally induced evolution of the structural and magnetic properties of Co/Pt and Pt/Co bilayered stacks

IF 4.3 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
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Abstract

The application of Co–Pt thin films as functional elements of novel nanoelectronics and spintronics devices requires the formation of a homogeneous ferromagnetic CoPt phase with tunable magnetic properties. A diffusion-controlled synthesis of this ferromagnetic phase can be implemented through the annealing of deposited Co/Pt bilayers. Apart from thermal treatment, both structural and magnetic properties of such layered stacks can be affected by ion preirradiation. In this work, we, therefore, studied the effect of a two-stage process consisting of preirradiation with 110 keV Ar+/N+ ions followed by post-annealing in vacuum at 550°С for 30 min on the evolution of the structural, chemical, and magnetic properties of Co/Pt/substrate and Pt/Co/substrate heterostructures. The results obtained for such two-stage processing were compared to those received after single-stage vacuum annealing. It was found that when ion preirradiation is followed by annealing, the diffusion-driven intermixing of Pt and Co leading to the formation of the ferromagnetic Co–Pt phase is slowed down compared to the non-irradiated samples, which is associated with the barrier effect of implanted projectiles. Furthermore, we demonstrate that preirradiation does not compromise the magnetic properties of the samples. For instance, preirradiation leads to a coercivity increase of up to 38 % compared to the non-irradiated annealed samples which is attributed to the presence of remaining paramagnetic Pt between the grains of the ferromagnetic A1-CoPt phase. We demonstrate that the applied two-stage processing (consisting of ion preirradiation followed by thermal annealing) of magnetic thin films is a promising approach for tailoring their magnetic properties such as the in-plane coercivity, saturation, and effective magnetization.

Ar+和N+离子辐照对Co/Pt和Pt/Co双层叠层结构和磁性能热诱导演化的影响
要将 Co-Pt 薄膜用作新型纳米电子器件和自旋电子器件的功能元件,就必须形成具有可调磁性能的均匀铁磁 CoPt 相。这种铁磁相的扩散控制合成可通过沉积 Co/Pt 双层膜的退火来实现。除了热处理之外,离子预辐照也会影响这种层状堆栈的结构和磁性能。因此,我们在这项工作中研究了两阶段过程对 Co/Pt/substrate 和 Pt/Co/substrate 异质结构的结构、化学和磁性演变的影响,这两阶段过程包括用 110 keV Ar+/N+ 离子进行预辐照,然后在真空中于 550°С 下退火 30 分钟。将这种两阶段处理所获得的结果与单阶段真空退火后获得的结果进行了比较。结果发现,在离子预辐照后进行退火处理时,与未辐照样品相比,铂和钴的扩散驱动混合导致铁磁性 Co-Pt 相形成的速度减慢,这与植入射弹的阻挡效应有关。此外,我们还证明了预辐照不会影响样品的磁性能。例如,与未经辐照退火的样品相比,预辐照可使矫顽力提高 38%,这归因于铁磁性 A1-CoPt 相晶粒之间存在剩余的顺磁性铂。我们证明,对磁性薄膜进行两阶段处理(包括离子预辐照和热退火)是一种很有前途的方法,可用于定制其磁特性,如面内矫顽力、饱和度和有效磁化。
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来源期刊
Materials Chemistry and Physics
Materials Chemistry and Physics 工程技术-材料科学:综合
CiteScore
8.70
自引率
4.30%
发文量
1515
审稿时长
69 days
期刊介绍: Materials Chemistry and Physics is devoted to short communications, full-length research papers and feature articles on interrelationships among structure, properties, processing and performance of materials. The Editors welcome manuscripts on thin films, surface and interface science, materials degradation and reliability, metallurgy, semiconductors and optoelectronic materials, fine ceramics, magnetics, superconductors, specialty polymers, nano-materials and composite materials.
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