Instantaneous microwave-photonic spatial-spectral channelization via k-space imaging

被引:5
作者
Ryan, Conor J. [1 ]
Beardell, William L. [1 ]
Murakowski, Janusz [1 ,2 ]
Schneider, Garrett J. [1 ,2 ]
Prather, Dennis W. [1 ,2 ]
机构
[1] Univ Delaware, Elect & Comp Engn Dept, Newark, DE 19716 USA
[2] Phase Sensit Innovat Inc, 51 East Main St, Newark, DE 19711 USA
关键词
MASSIVE MIMO;
D O I
10.1364/OE.427280
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The ability to both spatially and spectrally demultiplex wireless transmitters enables communication networks with higher spectral and energy efficiency. In practice, demultiplexing requires sub-millisecond latency to map the dynamics of the user space in real-time. Here, we present a system architecture, referred to as k-space imaging, which channelizes the radio frequency signals both spatially and spectrally through optical beamforming, where the latency is limited only by the speed of light traversing the optical components of the receiver. In this architecture, a phased antenna array samples radio signals, which are then coupled into electro-optic modulators (EOM) that coherently up-convert these signals to the optical domain, preserving their relative phases. The received signals, now optical sidebands, are transmitted in optical fibers of varying path lengths, which act as true time delays that yield frequency-dependent optical phases. The output facets of the optical fibers form a two-dimensional optical phased array in an arrangement preserving the phases generated by the angle of arrival (AoA) and the time-delay phases. Directing the beams emanating from the fibers through an optical lens produces a two-dimensional Fourier transtbrm of the optical field at the fiber array. Accordingly, the optical beam formed at the back focal plane of the lens is steered based upon the phases, providing the angle of arrival and instantaneous frequency measurement (IFM), with latency determined by the speed of light over the optical path length. We present a numerical evaluation and experimental demonstration of this passive AoA- and frequency-detection capability. (C) 2021 Optical Society of America under the terms of the OSA Open Access Publishing Agreement
引用
收藏
页码:19928 / 19944
页数:17
相关论文
共 21 条
  • [1] Beamspace MIMO for Millimeter-Wave Communications: System Architecture, Modeling, Analysis, and Measurements
    Brady, John
    Behdad, Nader
    Sayeed, Akbar M.
    [J]. IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2013, 61 (07) : 3814 - 3827
  • [2] Passive microwave spectral imaging with dynamic is metasurface apertures
    Diebold, Aaron, V
    Imani, Mohammadreza F.
    Fromenteze, Thomas
    Marks, Daniel L.
    Smith, David R.
    [J]. OPTICA, 2020, 7 (05) : 527 - 536
  • [3] Elijah O., 2015, 2015 10th Asian Control Conference (ASCC), P1
  • [4] Review of snapshot spectral imaging technologies
    Hagen, Nathan
    Kudenov, Michael W.
    [J]. OPTICAL ENGINEERING, 2013, 52 (09)
  • [5] Ngo HQ, 2012, INT CONF ACOUST SPEE, P3249, DOI 10.1109/ICASSP.2012.6288608
  • [6] Massive MIMO for Next Generation Wireless Systems
    Larsson, Erik G.
    Edfors, Ove
    Tufvesson, Fredrik
    Marzetta, Thomas L.
    [J]. IEEE COMMUNICATIONS MAGAZINE, 2014, 52 (02) : 186 - 195
  • [8] An Overview of Massive MIMO: Benefits and Challenges
    Lu, Lu
    Li, Geoffrey Ye
    Swindlehurst, A. Lee
    Ashikhmin, Alexei
    Zhang, Rui
    [J]. IEEE JOURNAL OF SELECTED TOPICS IN SIGNAL PROCESSING, 2014, 8 (05) : 742 - 758
  • [9] Progress Toward a Video-Rate, Passive Millimeter-Wave Imager for Brownout Mitigation
    Mackrides, Daniel G.
    Schuetz, Christopher A.
    Martin, Richard D.
    Dillon, Thomas E.
    Yao, Peng
    Prather, Dennis W.
    [J]. PASSIVE MILLIMETER-WAVE IMAGING TECHNOLOGY XIV, 2011, 8022
  • [10] Millimeter Wave Image Processing through Point Spread Function Engineering
    Mait, Joseph N.
    Martin, Richard D.
    Schuetz, Christopher A.
    Prather, Dennis W.
    [J]. RF AND MILLIMETER-WAVE PHOTONICS, 2011, 7936