Conversion method between port field and internal field of electromagnetic device based on time-reversal technique

被引:2
|
作者
Chen Chuan-Sheng [1 ]
Wang Bing-Zhong [1 ]
Ren, Wang [1 ]
机构
[1] Univ Elect Sci & Technol China, Inst Appl Phys, Chengdu 611731, Peoples R China
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
time-reversal; inverse design; Green's function;
D O I
10.7498/aps.70.20201682
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
With the integration of electromagnetic devices, the modules that make up into the devices and the functions that the devices needed to achieve are becoming more and more diverse. The coupling between the modules is difficult to ignore, the difficulty in designing increases sharply, and the traditional design methods gradually become incompetent. It is urgent to find a new comprehensive electromagnetic design method. This paper is to use the spatiotemporally synchronous focusing characteristics of time-reversed electromagnetic waves to explore the possibility of applying time-reversal technique to device design. First, based on the general device inverse design process, using the time-reversal technique, dyadic Green's function and basic principle of electromagnetics, a method of converting the port field distribution into the internal field distribution of the device is proposed. It is also proved that the continuous equivalent source obtained by the time-reversed field at a certain position in space can produce a field distribution close to the desired field at the port. In the single frequency inverse design process, only the tangential component of the electric field or magnetic field of the port is needed to be known. Then, with the help of the reciprocity of Green's function, the above theory is transformed to facilitate the numerical simulation. This numerical simulation realizes the reconstruction of the amplitude distribution source and the phase distribution source. It should be noted that the amplitude distribution source and phase distribution source are both randomly constructed. The numerical simulation verification is completed in two different cases and a variety of different initial conditions. All the simulation results are consistent with the theoretical results, which proves that it is feasible to apply time-reversal technique to the inverse design of electromagnetic devices.
引用
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页数:10
相关论文
共 25 条
  • [1] Bacot V, 2016, NAT PHYS, V12, P972, DOI [10.1038/nphys3810, 10.1038/NPHYS3810]
  • [2] On the Use of Electromagnetic Inversion for Metasurface Design
    Brown, Trevor
    Narendra, Chaitanya
    Vahabzadeh, Yousef
    Caloz, Christophe
    Mojabi, Puyan
    [J]. IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2020, 68 (03) : 1812 - 1824
  • [3] Inverse-designed all-dielectric waveguide bend
    Callewaert, F.
    Aydin, K.
    [J]. NOVEL OPTICAL SYSTEMS DESIGN AND OPTIMIZATION XIX, 2016, 9948
  • [4] Generative Deep Neural Networks for Inverse Materials Design Using Backpropagation and Active Learning
    Chen, Chun-Teh
    Gu, Grace X.
    [J]. ADVANCED SCIENCE, 2020, 7 (05)
  • [5] Focusing and amplification of electromagnetic waves by time reversal in an leaky reverberation chamber
    Davy, Matthieu
    de Rosny, Julien
    Joly, Jean-Christophe
    Fink, Mathias
    [J]. COMPTES RENDUS PHYSIQUE, 2010, 11 (01) : 37 - 43
  • [6] Fast solution of near-field time reversal electromagnetic field of sub-wavelength perfect conducting ball arrays
    Gong Zhi-Shuang
    Wang Bing-Zhong
    Wang Ren
    [J]. ACTA PHYSICA SINICA, 2018, 67 (08)
  • [7] Far-Field Super-Resolution Imaging of Scatterers With a Time-Reversal System Aided by a Grating Plate
    Gong, Zhi-Shuang
    Wang, Bing-Zhong
    Yang, Yu
    Zhou, Hong-Cheng
    Ding, Shuai
    Wang, Xiao-Hua
    [J]. IEEE PHOTONICS JOURNAL, 2017, 9 (01):
  • [8] Harrington R F, 2001, Time-Harmonic Electromagnetic Fields, P106
  • [9] Lee Hong-bae., 1997, IEEE transactions on microwave theory and techniques, V45, P803
  • [10] Inverse design in nanophotonics
    Molesky, Sean
    Lin, Zin
    Piggott, Alexander Y.
    Jin, Weiliang
    Vuckovic, Jelena
    Rodriguez, Alejandro W.
    [J]. NATURE PHOTONICS, 2018, 12 (11) : 659 - 670