The effect of Ga-ion irradiation on sub-micron-wavelength spin waves in yttrium-iron-garnet films.

IF 2.8 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Johannes Greil, Martina Kiechle, Adam Papp, Peter Neumann, Zoltán Kovács, Janos Volk, Frank Schulz, Sebastian Wintz, Markus Weigand, György Csaba, Markus Becherer
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引用次数: 0

Abstract

We investigate the effect of focused-ion-beam (FIB) irradiation on spin waves with sub-micron wavelengths in yttrium-iron-garnet films. Time-resolved scanning transmission x-ray microscopy was used to image the spin waves in irradiated regions and deduce corresponding changes in the magnetic parameters of the film. We find that the changes of Ga+irradiation can be understood by assuming a few percent change in the effective magnetizationMeffof the film due to a trade-off between changes in anisotropy and effective film thickness. Our results demonstrate that FIB irradiation can be used to locally alter the dispersion relation and the effective refractive indexneffof the film, even for submicron wavelengths. To achieve the same change innefffor shorter wavelengths, a higher dose is required, but no significant deterioration of spin wave propagation length in the irradiated regions was observed, even at the highest applied doses.

镓离子辐照对钇铁石榴石薄膜中亚微米波长自旋波的影响。
研究了聚焦离子束(FIB)辐照对钇铁石榴石(YIG)薄膜中亚微米波长自旋波的影响。利用时间分辨扫描透射x射线(TR-STXM)显微镜对辐照区域的自旋波进行成像,并推导出相应的膜磁参数变化。我们发现Ga+辐照的变化可以通过假设由于各向异性变化和有效膜厚度之间的权衡而导致膜的有效磁化系数发生几个百分点的变化来理解。我们的结果表明,FIB辐照可以局部改变薄膜的色散关系和有效折射率,即使是在亚微米波长。为了在较短波长内实现相同的变化,需要更高的剂量,但即使在最高剂量下,也未观察到自旋波在辐照区域传播长度的显著恶化。
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来源期刊
Nanotechnology
Nanotechnology 工程技术-材料科学:综合
CiteScore
7.10
自引率
5.70%
发文量
820
审稿时长
2.5 months
期刊介绍: The journal aims to publish papers at the forefront of nanoscale science and technology and especially those of an interdisciplinary nature. Here, nanotechnology is taken to include the ability to individually address, control, and modify structures, materials and devices with nanometre precision, and the synthesis of such structures into systems of micro- and macroscopic dimensions such as MEMS based devices. It encompasses the understanding of the fundamental physics, chemistry, biology and technology of nanometre-scale objects and how such objects can be used in the areas of computation, sensors, nanostructured materials and nano-biotechnology.
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