Efficient electromagnetic transducers for spin-wave devices

被引:0
|
作者
David A. Connelly
Gyorgy Csaba
Hadrian Renaldo O. Aquino
Gary H. Bernstein
Alexei Orlov
Wolfgang Porod
Jonathan Chisum
机构
[1] University of Notre Dame,Department of Electrical Engineering
[2] Pázmány Péter Catholic University,Faculty for Information Science and Bionics
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
This paper presents a system-level efficiency analysis, a rapid design methodology, and a numerical demonstration of efficient sub-micron, spin-wave transducers in a microwave system. Applications such as Boolean spintronics, analog spin-wave-computing, and magnetic microwave circuits are expected to benefit from this analysis and design approach. These applications have the potential to provide a low-power, magnetic paradigm alternative to modern electronic systems, but they have been stymied by a limited understanding of the microwave, system-level design for spin-wave circuits. This paper proposes an end-to-end microwave/spin-wave system model that permits the use of classical microwave network analysis and matching theory towards analyzing and designing efficient transduction systems. This paper further compares magnetostatic-wave transducer theory to electromagnetic simulations and finds close agreement, indicating that the theory, despite simplifying assumptions, is useful for rapid yet accurate transducer design. It further suggests that the theory, when modified to include the exchange interaction, will also be useful to rapidly and accurately design transducers launching magnons at exchange wavelengths. Comparisons are made between microstrip and co-planar waveguide lines, which are expedient, narrowband, and low-efficiency transducers, and grating and meander lines that are capable of high-efficiency and wideband performance. The paper concludes that efficient microwave-to-spin-wave transducers are possible and presents a meander transducer design on YIG capable of launching λ=500\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$\varvec{\lambda = 500}\,$$\end{document}nm spin waves with an efficiency of − 4.45 dB and a 3 dB-bandwidth of 134 MHz.
引用
收藏
相关论文
共 50 条
  • [21] ON SPIN-WAVE STATISTICS
    FRANK, D
    MEYER, K
    SOVIET PHYSICS JETP-USSR, 1963, 16 (01): : 215 - 216
  • [22] Spin-wave manipulation
    Horiuchi, Noriaki
    Satoh, Takuya
    NATURE PHOTONICS, 2012, 6 (10) : 706 - 706
  • [23] Spin-Wave Diode
    Lan, Jin
    Yu, Weichao
    Wu, Ruqian
    Xiao, Jiang
    PHYSICAL REVIEW X, 2015, 5 (04):
  • [24] Spin-wave interference
    Choi, Sangkook
    Lee, Ki-Suk
    Kim, Sang-Koog
    APPLIED PHYSICS LETTERS, 2006, 89 (06)
  • [25] SPIN-WAVE CORRELATOR
    SHULZ, M
    JOURNAL OF APPLIED PHYSICS, 1972, 43 (11) : 4752 - &
  • [26] SPIN-WAVE RESONANCE
    WEBER, R
    IEEE TRANSACTIONS ON MAGNETICS, 1968, MAG4 (01) : 28 - +
  • [27] DETERMINATION OF SPIN-WAVE BOUNDARY CONDITIONS BY DC EFFECTS IN SPIN-WAVE RESONANCE
    MOLLER, WM
    JURETSCHKE, HJ
    PHYSICAL REVIEW B-SOLID STATE, 1970, 2 (07): : 2651 - +
  • [28] Spin-wave resonance reflection and spin-wave induced domain wall displacement
    Wang, Xi-Guang
    Guo, Guang-Hua
    Zhang, Guang-Fu
    Nie, Yao-Zhuang
    Xia, Qing-Lin
    JOURNAL OF APPLIED PHYSICS, 2013, 113 (21)
  • [29] SELECTIVE PROPERTIES OF SPIN-WAVE DEVICES ON THE BASE OF SLOT AND COMPLANAR LINES
    DMITRIYEV, VF
    RADIOTEKHNIKA I ELEKTRONIKA, 1990, 35 (09): : 1821 - 1828
  • [30] Voltage-Controlled Reconfigurable Spin-Wave Nanochannels and Logic Devices
    Rana, Bivas
    Otani, YoshiChika
    PHYSICAL REVIEW APPLIED, 2018, 9 (01):