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Numerical simulation and temporal characterization of dual-pumped microring-resonator-based optical frequency combs
Hu, Xiaohong1,2; Wang, Weiqiang1,2,3; Wang, Leiran1,2; Zhang, Wenfu1,2,3; Wang, Yishan1; Zhao, Wei1
作者部门瞬态光学技术国家重点实验室
2017-06-01
发表期刊PHOTONICS RESEARCH
ISSN2327-9125
卷号5期号:3页码:207-211
产权排序1
摘要

Dual-pumped microring-resonator-based optical frequency combs (OFCs) and their temporal characteristics are numerically investigated and experimentally explored. The calculation results obtained by solving the driven and damped nonlinear Schrodinger equation indicate that an ultralow coupled pump power is required to excite the primary comb modes through a non-degenerate four-wave-mixing (FWM) process and, when the pump power is boosted, both the comb mode intensities and spectral bandwidths increase. At low pump powers, the field intensity profile exhibits a cosine variation manner with frequency equal to the separation of the two pumps, while a roll Turing pattern is formed resulting from the increased comb mode intensities and spectral bandwidths at high pump powers. Meanwhile, we found that the power difference between the two pump fields can be transferred to the newly generated comb modes, which are located on both sides of the pump modes, through a cascaded FWM process. Experimentally, the dual-pumped OFCs were realized by coupling two self-oscillating pump fields into a microring resonator. The numerically calculated comb spectrum is verified by generating an OFC with 2.0 THz mode spacing over 160 nm bandwidth. In addition, the formation of a roll Turing pattern at high pump powers is inferred from the measured autocorrelation trace of a 10 free spectral range (FSR) OFC. The experimental observations accord well with the numerical predictions. Due to their large and tunable mode spacing, robustness, and flexibility, the proposed dual-pumped OFCs could find potential applications in a wide range of fields, including arbitrary optical waveform generation, high-capacity optical communications, and signal-processing systems. (C) 2017 Chinese Laser Press

文章类型Article
WOS标题词Science & Technology ; Physical Sciences
DOI10.1364/PRJ.5.000207
收录类别SCI ; EI
关键词[WOS]GENERATION ; MICRORESONATOR
语种英语
WOS研究方向Optics
项目资助者Chinese Academy of Sciences (CAS)(XDB 24030600) ; National Key Research and Development Program of China(2016YFF0200702) ; National Natural Science Foundation of China (NSFC)(61690222 ; CAS-SAFEA International Partnership Program for Creative Research Teams ; 61308037 ; 61635013)
WOS类目Optics
WOS记录号WOS:000405990300011
引用统计
被引频次:16[WOS]   [WOS记录]     [WOS相关记录]
文献类型期刊论文
条目标识符http://ir.opt.ac.cn/handle/181661/29171
专题瞬态光学研究室
作者单位1.Chinese Acad Sci, Xian Inst Opt & Precis Mech, State Key Lab Transient Opt & Photon, Xian 710119, Peoples R China
2.Univ Chinese Acad Sci, Beijing 100049, Peoples R China
3.Chinese Acad Sci, Xian Inst Opt & Precis Mech, China UK Joint Res Ctr Micro Nano Photon, Xian 710119, Peoples R China
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Hu, Xiaohong,Wang, Weiqiang,Wang, Leiran,et al. Numerical simulation and temporal characterization of dual-pumped microring-resonator-based optical frequency combs[J]. PHOTONICS RESEARCH,2017,5(3):207-211.
APA Hu, Xiaohong,Wang, Weiqiang,Wang, Leiran,Zhang, Wenfu,Wang, Yishan,&Zhao, Wei.(2017).Numerical simulation and temporal characterization of dual-pumped microring-resonator-based optical frequency combs.PHOTONICS RESEARCH,5(3),207-211.
MLA Hu, Xiaohong,et al."Numerical simulation and temporal characterization of dual-pumped microring-resonator-based optical frequency combs".PHOTONICS RESEARCH 5.3(2017):207-211.
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