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Magnetic thin-film insulator with ultra-low spin wave damping for coherent nanomagnonics

机译:具有超低自旋波阻尼特性的磁性薄膜绝缘子用于相干纳米磁体

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摘要

Wave control in the solid state has opened new avenues in modern information technology. Surface-acoustic-wave-based devices are found as mass market products in 100 millions of cellular phones. Spin waves (magnons) would offer a boost in today's data handling and security implementations, i.e., image processing and speech recognition. However, nanomagnonic devices realized so far suffer from the relatively short damping length in the metallic ferromagnets amounting to a few 10 micrometers typically. Here we demonstrate that nm-thick YIG films overcome the damping chasm. Using a conventional coplanar waveguide we excite a large series of short-wavelength spin waves (SWs). From the data we estimate a macroscopic of damping length of about 600 micrometers. The intrinsic damping parameter suggests even a record value about 1 mm allowing for magnonics-based nanotechnology with ultra-low damping. In addition, SWs at large wave vector are found to exhibit the non-reciprocal properties relevant for new concepts in nanoscale SW-based logics. We expect our results to provide the basis for coherent data processing with SWs at GHz rates and in large arrays of cellular magnetic arrays, thereby boosting the envisioned image processing and speech recognition.
机译:固态电波控制为现代信息技术开辟了新途径。基于表面声波的设备已在1亿部蜂窝电话中作为大众市场产品被发现。自旋波(磁振子)将为当今的数据处理和安全性实现(例如图像处理和语音识别)带来更大的推动力。然而,迄今为止实现的纳米磁控器件的缺点是金属铁磁体中的阻尼长度相对较短,典型地为几十微米。在这里,我们证明了纳米厚的YIG薄膜克服了阻尼鸿沟。使用常规的共面波导,我们激发了一系列短波自旋波(SW)。根据这些数据,我们估算出大约600微米的阻尼长度。固有的阻尼参数表明,即使是创纪录的约1?mm的值,也允许采用超低阻尼的基于磁学的纳米技术。此外,发现在大波矢处的软件开关展现出与基于纳米软件的纳米逻辑中的新概念相关的不可逆特性。我们希望我们的结果将为以GHz速率和大型蜂窝磁性阵列阵列中的SW进行相干数据处理提供基础,从而促进设想的图像处理和语音识别。

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