Generalized Linear Optical Sampling Technique Realized by Using Non-Pulse Electro-Optic Frequency Comb Sampling Source

We propose a novel generalized linear optical sampling (GLOS) technique realized by using an electro-optic frequency comb (EOFC) as the sampling signal. GLOS technique is demonstrated as a bandwidth compression process in frequency domain instead of gating effect in time domain. An EOFC without the...

Full description

Bibliographic Details
Main Authors: Bingxin Xu, Xinyu Fan, Shuai Wang, Zuyuan He
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9121264/
id doaj-5cdc47f60d1244fa8621bbc0e3b8d6ee
record_format Article
spelling doaj-5cdc47f60d1244fa8621bbc0e3b8d6ee2021-03-30T02:29:29ZengIEEEIEEE Access2169-35362020-01-01811425911426510.1109/ACCESS.2020.30037809121264Generalized Linear Optical Sampling Technique Realized by Using Non-Pulse Electro-Optic Frequency Comb Sampling SourceBingxin Xu0https://orcid.org/0000-0001-7983-4718Xinyu Fan1Shuai Wang2Zuyuan He3Department of Electronic Engineering, State Key Laboratory of Advanced Optical Communication Systems and Networks, Shanghai Institute for Advanced Communication and Data Science, Shanghai Jiao Tong University, Shanghai, ChinaDepartment of Electronic Engineering, State Key Laboratory of Advanced Optical Communication Systems and Networks, Shanghai Institute for Advanced Communication and Data Science, Shanghai Jiao Tong University, Shanghai, ChinaDepartment of Electronic Engineering, State Key Laboratory of Advanced Optical Communication Systems and Networks, Shanghai Institute for Advanced Communication and Data Science, Shanghai Jiao Tong University, Shanghai, ChinaDepartment of Electronic Engineering, State Key Laboratory of Advanced Optical Communication Systems and Networks, Shanghai Institute for Advanced Communication and Data Science, Shanghai Jiao Tong University, Shanghai, ChinaWe propose a novel generalized linear optical sampling (GLOS) technique realized by using an electro-optic frequency comb (EOFC) as the sampling signal. GLOS technique is demonstrated as a bandwidth compression process in frequency domain instead of gating effect in time domain. An EOFC without the limitation to be ultra-short pulse serves as sampling signal is pre-measured. In experiments, the waveforms are sampled by an EOFC with agile repetition rates and bandwidths. After a demodulation process with pre-measured information, the original signal under test in both intensity and phase fields can be recovered. The results obtained from the proposed method are consistent with those from traditional linear optical sampling technique. Besides, with a high average mode power, EOFC-based GLOS technique realizes more than 10 dB SNR improvement and has ability to detect weak signal with a power of -47.3 dBm. Our demonstration opens the way for cost-effective comb sources to be used in optical sampling fields.https://ieeexplore.ieee.org/document/9121264/Linear optical samplingelectro-optic frequency combrepetition rate agilitySNR improvement
collection DOAJ
language English
format Article
sources DOAJ
author Bingxin Xu
Xinyu Fan
Shuai Wang
Zuyuan He
spellingShingle Bingxin Xu
Xinyu Fan
Shuai Wang
Zuyuan He
Generalized Linear Optical Sampling Technique Realized by Using Non-Pulse Electro-Optic Frequency Comb Sampling Source
IEEE Access
Linear optical sampling
electro-optic frequency comb
repetition rate agility
SNR improvement
author_facet Bingxin Xu
Xinyu Fan
Shuai Wang
Zuyuan He
author_sort Bingxin Xu
title Generalized Linear Optical Sampling Technique Realized by Using Non-Pulse Electro-Optic Frequency Comb Sampling Source
title_short Generalized Linear Optical Sampling Technique Realized by Using Non-Pulse Electro-Optic Frequency Comb Sampling Source
title_full Generalized Linear Optical Sampling Technique Realized by Using Non-Pulse Electro-Optic Frequency Comb Sampling Source
title_fullStr Generalized Linear Optical Sampling Technique Realized by Using Non-Pulse Electro-Optic Frequency Comb Sampling Source
title_full_unstemmed Generalized Linear Optical Sampling Technique Realized by Using Non-Pulse Electro-Optic Frequency Comb Sampling Source
title_sort generalized linear optical sampling technique realized by using non-pulse electro-optic frequency comb sampling source
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description We propose a novel generalized linear optical sampling (GLOS) technique realized by using an electro-optic frequency comb (EOFC) as the sampling signal. GLOS technique is demonstrated as a bandwidth compression process in frequency domain instead of gating effect in time domain. An EOFC without the limitation to be ultra-short pulse serves as sampling signal is pre-measured. In experiments, the waveforms are sampled by an EOFC with agile repetition rates and bandwidths. After a demodulation process with pre-measured information, the original signal under test in both intensity and phase fields can be recovered. The results obtained from the proposed method are consistent with those from traditional linear optical sampling technique. Besides, with a high average mode power, EOFC-based GLOS technique realizes more than 10 dB SNR improvement and has ability to detect weak signal with a power of -47.3 dBm. Our demonstration opens the way for cost-effective comb sources to be used in optical sampling fields.
topic Linear optical sampling
electro-optic frequency comb
repetition rate agility
SNR improvement
url https://ieeexplore.ieee.org/document/9121264/
work_keys_str_mv AT bingxinxu generalizedlinearopticalsamplingtechniquerealizedbyusingnonpulseelectroopticfrequencycombsamplingsource
AT xinyufan generalizedlinearopticalsamplingtechniquerealizedbyusingnonpulseelectroopticfrequencycombsamplingsource
AT shuaiwang generalizedlinearopticalsamplingtechniquerealizedbyusingnonpulseelectroopticfrequencycombsamplingsource
AT zuyuanhe generalizedlinearopticalsamplingtechniquerealizedbyusingnonpulseelectroopticfrequencycombsamplingsource
_version_ 1724185066641293312