Breaking FOV-Aperture Trade-Off With Multi-Mode Nano-Photonic Antennas

被引:11
作者
Fatemi, Reza [1 ]
Khial, Parham P. [1 ]
Khachaturian, Aroutin [1 ]
Hajimiri, Ali [1 ]
机构
[1] CALTECH, Dept Elect Engn, Pasadena, CA 91125 USA
关键词
Phased arrays; nanotechnology; antenna arrays; antenna efficiency; antenna gain; antenna radiation patterns; antenna theory; antennas; aperture efficiency; optical arrays; OPTICAL PHASED-ARRAY; CHARACTERISTIC MODES; INVERSE DESIGN; SILICON; ROTATOR; MIMO;
D O I
10.1109/JSTQE.2020.3026966
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Nano-photonic antennas are one of the key components in integrated photonic transmitter and receiver systems. Conventionally, grating couplers, designed to couple into an optical fiber, suffering from limitations such as large footprint and small field-of-view (FOV) have been used as on-chip antennas. The challenge of the antenna design is more pronounced for the receiver systems, where both the collected power by the antenna and its FOV often need to be maximized. While some novel solutions have been demonstrated recently, identifying fundamental limits and trade-offs in nano-photonic antenna design is essential for devising compact antenna structures with improved performance. In this paper, the fundamental electromagnetic limits, as well as fabrication imposed constraints on improving antenna effective aperture and FOV are studied, and approximated performance upper limits are derived and quantified. By deviating from the conventional assumptions leading to these limits, high-performance multi-mode antenna structures with performance characteristics beyond the conventional perceived limits are demonstrated. Finally, the application of a pillar multi-mode antenna in a dense array is discussed, an antenna array with more than 95% collection efficiency and 170 degrees FOV is demonstrated, and a coherent receiving system utilizing such an aperture is presented.
引用
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页数:14
相关论文
共 49 条
[1]   A 1-D Heterodyne Lens-Free Optical Phased Array Camera With Reference Phase Shifting [J].
Abiri, Behrooz ;
Fatemi, Reza ;
Hajimiri, Ali .
IEEE PHOTONICS JOURNAL, 2018, 10 (05)
[2]   Nanophotonic projection system [J].
Aflatouni, Firooz ;
Abiri, Behrooz ;
Rekhi, Angad ;
Hajimiri, Ali .
OPTICS EXPRESS, 2015, 23 (16) :21012-21022
[3]   Nanophotonic coherent imager [J].
Aflatouni, Firooz ;
Abiri, Behrooz ;
Rekhi, Angad ;
Hajimiri, Ali .
OPTICS EXPRESS, 2015, 23 (04) :5117-5125
[4]   Inverse design optimization for efficient coupling of an electrically injected optical antenna-LED to a single-mode waveguide [J].
Andrade, Nicolas M. ;
Hooten, Sean ;
Fortuna, Seth A. ;
Han, Kevin ;
Yablonovitch, Eli ;
Wu, Ming C. .
OPTICS EXPRESS, 2019, 27 (14) :19802-19814
[5]  
[Anonymous], 2011, Microwave Engineering
[6]   N x N optical phased array with 2N phase shifters [J].
Ashtiani, Farshid ;
Aflatouni, Firooz .
OPTICS EXPRESS, 2019, 27 (19) :27183-27190
[7]   A polarization-diversity wavelength duplexer circuit in silicon-on-insulator photonic wires [J].
Bogaerts, Wim ;
Taillaert, Dirk ;
Dumon, Pieter ;
Van Thourhout, Dries ;
Baets, Roel .
OPTICS EXPRESS, 2007, 15 (04) :1567-1578
[8]   The theory of characteristic modes revisited:: A contribution to the design of antennas for modern applications [J].
Cabedo-Fabres, Marta ;
Antonino-Daviu, Eva ;
Valero-Nogueira, Alejandro ;
Bataller, Miguel Ferrando .
IEEE ANTENNAS AND PROPAGATION MAGAZINE, 2007, 49 (05) :52-68
[9]   High-contrast gratings for integrated optoelectronics [J].
Chang-Hasnain, Connie J. ;
Yang, Weijian .
ADVANCES IN OPTICS AND PHOTONICS, 2012, 4 (03) :379-440
[10]  
Cheng D. K., 1989, Field and Wave Electromagnetics Addison Wesley, V2, P601