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Hybrid magnonics: Physics, circuits, and applications for coherent information processing

机译:Hybrid Magnonics:物理,电路和相干信息处理的应用

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摘要

Hybrid dynamic systems have recently gained interest with respect to both fundamental physics and device applications, particularly with their potential for coherent information processing. In this perspective, we will focus on the recent rapid developments of magnon-based hybrid systems, which seek to combine magnonic excitations with diverse excitations for transformative applications in devices, circuits, and information processing. Key to their promising potentials is that magnons are highly tunable excitations and can be easily engineered to couple with various dynamic media and platforms. The capability of reaching strong coupling with many different excitations has positioned magnons well for studying solid-state coherent dynamics and exploiting unique functionality. In addition, with their gigahertz frequency bandwidth and the ease of fabrication and miniaturization, magnonic devices and systems can be conveniently integrated into microwave circuits for mimicking a broad range of device concepts that have been applied in microwave electronics, photonics, and quantum information. We will discuss a few potential directions for advancing magnon hybrid systems, including on-chip geometry, novel coherent magnonic functionality, and coherent transduction between different platforms. As a future outlook, we will discuss the opportunities and challenges of magnonic hybrid systems for their applications in quantum information and magnonic logic.
机译:混合动态系统最近对基础物理和设备应用的兴趣,特别是它们对相干信息处理的潜力。在这种观点中,我们将专注于最近基于MAGRON的混合系统的快速发展,该系统寻求将aggonic激发与器件,电路和信息处理中的转化应用程序相结合。他们有希望的潜力的关键是,隆汤是高度可调的兴奋,可以轻松地设计成与各种动态媒体和平台加上耦合。与许多不同激励达到强耦合的能力已经定位了用于研究固态相干动态和利用独特功能的巨头。此外,通过千赫氏频率带宽和易于制造和小型化,延长装置和系统可以方便地集成到微波电路中,用于模拟已在微波电子,光子和量子信息中应用的广泛的设备概念。我们将讨论推进MAGNON混合系统的一些潜在方向,包括片上几何形状,新颖的相干磁力功能和不同平台之间的相干转换。作为未来的前景,我们将讨论agagonic混合系统在量子信息和agagonic逻辑中的应用的机会和挑战。

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  • 来源
    《Journal of Applied Physics》 |2020年第13期|130902.1-130902.16|共16页
  • 作者单位

    Materials Science Division Argonne National Laboratory Argonne Illinois 60439 USA;

    Materials Science Division Argonne National Laboratory Argonne Illinois 60439 USA Department of Physics Oakland University Rochester Michigan 48309 USA;

    Department of Physics Oakland University Rochester Michigan 48309 USA;

    Materials Science Division Argonne National Laboratory Argonne Illinois 60439 USA;

    Department of Materials Science and Engineering University of Illinois at Urbana-Champaign Urbana Illinois 61801 USA;

    Materials Science Division Argonne National Laboratory Argonne Illinois 60439 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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