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首页> 外文期刊>The European physical journal, B. Condensed matter physics >Waveguides as sources of short-wavelength spin waves for low-energy ICT applications
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Waveguides as sources of short-wavelength spin waves for low-energy ICT applications

机译:波导作为低能量ICT应用的短波长旋转波的来源

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摘要

Spin waves offer intriguing possibilities for transmitting and processing information in future low-power electronics. Most proposed devices, however, require the efficient excitation and detection of spin waves in the sub-micrometer range, that is a rather challenging task. In fact, coplanar and microstrip waveguides have been widely used in the past to excite and detect spin waves with wavelengths of tens of microns in thin films of both metallic ferromagnets and on magnetic insulators, but the scalability of these structures micrometer or sub-micrometer have not been investigated in detail. In this study, we present a combined experimental/computational study of a few possible input structures consisting of either symmetrical or asymmetrical coplanar waveguides on top of CoFe films, with widths going all the way down to 250 nm. The primary goal of this work is to present a case study, aiming to explore the limitations of waveguides in creating short-wavelength spin waves for future nanoelectronic applications. We use micro-focused Brillouin light scattering measurements and micromagnetic simulations to analyze the characteristics of the emitted spin waves, achieving reasonable agreement between experiment and simulations. We find that due to the inherently delocalized field distributions of waveguides, and also to the relatively high resistivity of narrow waveguides, they all show poor efficiency for generating spin waves with wavelength below about 2 mu m, corresponding to frequencies above 10 GHz in a moderate external field. This means that the intensity of the generated spin waves for a given input power drops quickly for the frequency/wavelength range which is most relevant for emerging applications. This case study demonstrates many of the inherent inefficiencies and limitations of waveguide-based spin wave generation in this regime. Our work supports the conclusion that one may have to use a different mechanism for spin wave generation, exploiting multifer
机译:旋转波可以为未来的低功耗电子设备中传输和处理信息提供兴趣可能性。然而,最拟议的装置需要有效的激励和检测子微米范围内的旋转波,这是一个相当具有挑战性的任务。事实上,Foplanar和微带波导已被广泛使用,以激发和检测具有在金属铁磁体和磁绝缘体的薄膜中具有数十微米的波长的旋转波,但这些结构千分尺或亚微米的可扩展性具有未详细调查。在这项研究中,我们介绍了由一个可能的输入结构的组合实验/计算研究,该研究包括在CoFe膜的顶部上的对称或不对称共面波导,宽度将宽到250nm。本工作的主要目标是出示一个案例研究,旨在探讨波导在为未来纳米电子应用创造短波长自旋波的局限性。我们使用微聚焦布里渊光散射测量和微磁性模拟来分析发出的自旋波的特性,实现实验与模拟之间的合理协议。我们发现,由于波导的固有临近的截匙现场分布,以及对窄波导的相对高的电阻率,它们都表现出较差的效率,用于产生波长低于约2μm的旋转波,对应于中等10GHz的频率。外部领域。这意味着对于给定输入功率的产生的旋转波的强度快速地降低了对新兴应用最相关的频率/波长范围。本案例研究表明了在该方案中的许多固有的效率低度和波导的旋转波产生的局限性。我们的工作支持得出的结论,即人们可能必须使用不同的旋转波浪产生机制,利用多税

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