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Open AccessJournal ArticleDOI

True Time Delay Optical Beamforming Network Based on Hybrid Inp-Silicon Nitride Integration

Abstract
We demonstrate a broadband and continuously tunable 1×4 optical beamforming network (OBFN), based on the hybrid integration of indium phosphide (InP) components in the silicon nitride (Si3N4) platform. The photonic integrated circuit (PIC) comprises a hybrid InP-Si3N4 external cavity laser, a pair of InP phase modulators, a Si3N4 optical single-sideband full carrier (SSBFC) filter followed by four tunable optical true time delay lines (OTTDLs), and four InP photodetectors. Each OTTDL consists of eight cascaded thermo-optical micro-ring resonators (MRRs) that impose tunable true time delay on the propagating optical signals. The OBFN-PIC is designed to facilitate the steering of a microwave signal with carrier frequency up to 40 GHz over a continuous set of beam angles. We evaluate the performance of the OBFN-PIC to handle and process microwave signals, measuring the link gain, the noise figure (NF), and the spurious-free dynamic range (SFDR) parameters. Moreover, we assess its beamforming capabilities assuming that the OBFN-PIC is part of a wireless system operating in the downlink direction and feeds a multi-element antenna array. Using microwave signals at 5 and 10 GHz with quadrature amplitude modulation (QAM) formats at 500 Mbaud, we evaluate the performance of the OBFN-PIC under various configurations. We show that error-free performance can be achieved at both operating frequencies and for all the investigated beam angles ranging from 45° to 135°, thus validating its potential for high-quality beamforming performance.

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Journal ArticleDOI

Ultrahigh dynamic range and low noise figure programmable integrated microwave photonic filter

TL;DR: In this paper , a multi-functional integrated microwave photonic circuit that enables on-chip programmable filtering functions while achieving record-high key radio frequency metrics of >120 dB.
Proceedings ArticleDOI

Ultra-low power stress-based phase actuation in TriPleX photonic circuits

TL;DR: In this paper , the authors present ultra-low power stress optic actuators for high-speed switching in photonic integrated circuits using the standard silicon nitride TriPleX™ platform.
Journal ArticleDOI

Multi-Band and Frequency-Agile Chip-Based RF Photonic Filter for Ultra-Deep Interference Rejection

TL;DR: In this paper , a chip-based MWP notch filter with three independent notches is proposed to attenuate multiple interferers over a wide frequency range, achieving low RF passband losses of 8 dB and peak notch depth greater than 40 dB with 500 MHz spectral resolution.
Journal ArticleDOI

Fully integrated hybrid microwave photonic receiver

- 26 May 2022 - 
TL;DR: In this article , the authors report a fully integrated hybrid microwave photonic receiver (FIH-MWPR) obtained by comprising the indium phosphide (InP) laser chip and the monolithic silicon-on-insulator (SOI) photonic circuit into the same substrate based on the low-coupling-loss micro-optics method.

Air-Filled SIW Remote Antenna Unit With True Time Delay Optical Beamforming for mmWave-Over-Fiber Systems

TL;DR: In this article , a low-complexity and efficient mmWave-over-fiber remote antenna unit (RAU) is proposed for broadband transmission and wide-angle squint-free beam steering in the full [26.5-29.5] GHz n257 5G band.
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Microwave Photonics

TL;DR: In this paper, techniques developed in the last few years in microwave photonics are reviewed with an emphasis on the systems architectures for photonic generation and processing of microwave signals, photonic true-time delay beamforming, radio-over-fiber systems, and photonic analog-to-digital conversion.
Journal ArticleDOI

Photonic beamformer for phased array antennas using a fiber grating prism

TL;DR: In this paper, the authors presented the first measured data on a Bragg reflection grating based fiber-optic prism true time delay processor for transmit/receive phased array beamforming, which takes maximum advantage of component reuse and fully integrates the transmit and receive modes in one efficient hardware compressive topology.
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