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Novel photonic true-time-delay beamformer based on the free-spectral-range periodicity of arrayed waveguide gratings and fiber dispersion | IEEE Journals & Magazine | IEEE Xplore

Novel photonic true-time-delay beamformer based on the free-spectral-range periodicity of arrayed waveguide gratings and fiber dispersion


Abstract:

A novel optical beamformer based on the spectral periodicity of arrayed waveguide gratings (AWGs) and dispersive fiber is proposed. This architecture uses multiple sets o...Show More

Abstract:

A novel optical beamformer based on the spectral periodicity of arrayed waveguide gratings (AWGs) and dispersive fiber is proposed. This architecture uses multiple sets of wavelengths with a spectral spacing among the signals on each set equal to the free spectral range of the AWG in such a way that all the wavelengths of each set are routed to the same AWG port and pass through the same fiber length in order to obtain multiple simultaneous delays. A wavelength-to-antenna element correspondence is established so fiber dispersion will introduce an equal delay amongst signals of the array elements. This architecture presents straightforward multibeam capability. Experimental results demonstrating the feasibility of the delay line are presented.
Published in: IEEE Photonics Technology Letters ( Volume: 14, Issue: 11, November 2002)
Page(s): 1614 - 1616
Date of Publication: 30 November 2002

ISSN Information:

Citations are not available for this document.

I. Introduction

Phased-Array antennas (PAAs) have been proposed for different applications due to their higher flexibility and better performance over mechanical steering antennas. Traditionally, beamforming networks in PAA have been electronically implemented. However, over the last years, optical beamforming for PAAs has been intensely studied to ease some of the problems related with traditional electronic steering systems [1]. Optical beamforming offers many advantages such as small size, low weight, no susceptibility to electromagnetic interference, and especially, wide instantaneous bandwidth and squint-free beam steering. Nevertheless, many optical beamforming architectures present high overall system cost and complexity. In order to achieve a significant cost reduction, the use of the wavelength-domain parallelism is the most promising option. In AWG loop-back configuration [2], a switched-dispersion-based delay-line architecture was presented, which uses multiple simultaneous wavelengths to obtain multiple simultaneous proportional delays with a fixed wavelength-to-antenna element correspondence. In this beamformer, the beam is discretely steered by switching between different lengths of dispersive fiber. However, this scheme does not provide an easy multibeam capability, which is required in many applications.

Cites in Papers - |

Cites in Papers - IEEE (11)

Select All
1.
Matthew J. Mondich, Jason D. McKinney, Frank Bucholtz, Joseph M. Singley, Ian M. Maize, Keith J. Williams, "Group Delay-Based Wideband Photonic Receive-Mode Radio-Frequency Beamforming", Journal of Lightwave Technology, vol.38, no.21, pp.5893-5907, 2020.
2.
Ruth Rotman, Moshe Tur, Lior Yaron, "True Time Delay in Phased Arrays", Proceedings of the IEEE, vol.104, no.3, pp.504-518, 2016.
3.
Stavros Iezekiel, Maurizio Burla, Jonathan Klamkin, David Marpaung, Jose Capmany, "RF Engineering Meets Optoelectronics: Progress in Integrated Microwave Photonics", IEEE Microwave Magazine, vol.16, no.8, pp.28-45, 2015.
4.
Kishor Chandra, Zizheng Cao, T.M. Bruintjes, R. Venkatesha Prasad, G. Karagiannis, Eduward Tangdiongga, H.P.A. van den Boom, A.B.J. Kokkeler, "mCRAN: A radio access network architecture for 5G indoor communications", 2015 IEEE International Conference on Communication Workshop (ICCW), pp.300-305, 2015.
5.
Lior Yaron, Ruth Rotman, Shlomo Zach, Moshe Tur, "Photonic Beamformer Receiver With Multiple Beam Capabilities", IEEE Photonics Technology Letters, vol.22, no.23, pp.1723-1725, 2010.
6.
Moshe Tur, "True time delay photonic beamforming: A review", 2009 IEEE International Conference on Microwaves, Communications, Antennas and Electronics Systems, pp.1-2, 2009.
7.
Kamau Prince, Marco Presi, Andrea Chiuchiarelli, Isabella Cerutti, Giampiero Contestabile, Idelfonso Tafur Monroy, Ernesto Ciaramella, "Variable Delay With Directly-Modulated R-SOA and Optical Filters for Adaptive Antenna Radio-Fiber Access", Journal of Lightwave Technology, vol.27, no.22, pp.5056-5064, 2009.
8.
Oded Raz, Sharon Barzilay, Ruth Rotman, Moshe Tur, "Submicrosecond Scan-Angle Switching Photonic Beamformer With Flat RF Response in the C and X Bands", Journal of Lightwave Technology, vol.26, no.15, pp.2774-2781, 2008.
9.
Warnky, Mital, Anderson, "Demonstration of a quartic cell, a free-space true-time-delay device based on the white cell", Journal of Lightwave Technology, vol.24, no.10, pp.3849-3855, 2006.
10.
J.L. Corral, "IST-OBANET: optical smart antennas for mm-wave broadband wireless access networks", MWP 2003 Proceedings. International Topical Meeting on Microwave Photonics, 2003., pp.393-397, 2003.
11.
B. Vidal, J.L. Corral, M.A. Piqueras, J. Marti, "Optical delay line based on arrayed waveguide gratings' spectral periodicity and dispersive media for antenna beamforming applications", IEEE Journal of Selected Topics in Quantum Electronics, vol.8, no.6, pp.1202-1210, 2002.

Cites in Papers - Other Publishers (3)

1.
Jianping Yao, Jose Capmany, Ming Li, "Microwave Photonics Beamforming Networks for Phased Array Antennas" in Microwave Photonics, pp.237-275, 2024.
2.
Airat Zainullin, Borja Vidal, Andres Macho, Roberto Llorente, "Multicore fiber beamforming network for broadband satellite communications", Terahertz, RF, Millimeter, and Submillimeter-Wave Technology and Applications X, vol.10103, pp.1010310, 2017.
3.
Randy L. Haupt, "Time Delay in a Corporate-Fed Array" in Timed Arrays: Wideband and Time Varying Antenna Arrays, pp.126-148, 2015.
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References

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