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Omnidirectional spin-wave nanograting coupler

机译:全向自旋波纳米光栅耦合器

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Magnonics as an emerging nanotechnology offers functionalities beyond current semiconductor technology. Spin waves used in cellular nonlinear networks are expected to speed up technologically, demanding tasks such as image processing and speech recognition at low power consumption. However, efficient coupling to microelectronics poses a vital challenge. Previously developed techniques for spin-wave excitation (for example, by using parametric pumping in a cavity) may not allow for the relevant downscaling or provide only individual point-like sources. Here we demonstrate that a grating coupler of periodically nanostructured magnets provokes multidirectional emission of short-wavelength spin waves with giantly enhanced amplitude compared with a bare microwave antenna. Exploring the dependence on ferromagnetic materials, lattice constants and the applied magnetic field, we find the magnonic grating coupler to be more versatile compared with gratings in photonics and plasmonics. Our results allow one to convert, in particular, straight microwave antennas into omnidirectional emitters for short-wavelength spin waves, which are key to cellular nonlinear networks and integrated magnonics.RI Arumugam, Thirumagal/C-3408-2014; Grundler, Dirk/B-8571-2012
机译:Magnonics作为一种新兴的纳米技术,其功能超出了当前的半导体技术。蜂窝非线性网络中使用的自旋波有望在技术上加速,并要求以低功耗执行诸如图像处理和语音识别之类的任务。然而,与微电子的有效耦合提出了重大挑战。先前开发的用于自旋波激励的技术(例如,通过在腔体中使用参数泵浦)可能不允许进行相应的缩小,或仅提供单个点状源。在这里,我们证明,与裸露的微波天线相比,周期性纳米结构的磁体的光栅耦合器会激发短波自旋波的多方向发射,振幅会大大增强。探索了对铁磁材料,晶格常数和所施加磁场的依赖性,我们发现,与光子学和等离子学中的光栅相比,强磁光栅耦合器具有更多的通用性。我们的研究结果使人们尤其可以将直微波天线转换为短波自旋波的全向发射器,这对于细胞非线性网络和集成磁系统是至关重要的。RIArumugam,Thirumagal / C-3408-2014; Grundler,Dirk / B-8571-2012

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