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Highly stable and repeatable femtosecond soliton pulse generation from saturable absorbers based on two-dimensional Cu3−xP nanocrystals
Haoran Mu1; Zeke Liu2; Xiaozhi Bao3; Zhichen Wan1; Guanyu Liu4; Xiangping Li4; Huaiyu Shao3; Guichuan Xing3; Babar Shabbir1; Lei Li5; Tian Sun2; Shaojuan Li2; Wanli Ma2; Qiaoliang Bao1
2020-07-10
Source PublicationFrontiers of Optoelectronics
ISSN2095-2759
Volume13Issue:2Pages:139-148
Abstract

Heavily doped colloidal plasmonic nanocrystals have attracted great attention because of their lower and adjustable free carrier densities and tunable localized surface plasmonic resonance bands in the spectral range from near-infra to mid-infra wavelengths. With its plasmon-enhanced optical nonlinearity, this new family of plasmonic materials shows a huge potential for nonlinear optical applications, such as ultrafast switching, nonlinear sensing, and pulse laser generation. Cu3−xP nanocrystals were previously shown to have a strong saturable absorption at the plasmonic resonance, which enabled high-energy Q-switched fiber lasers with 6.1 μs pulse duration. This work demonstrates that both high-quality mode-locked and Q-switched pulses at 1560 nm can be generated by evanescently incorporating two-dimensional (2D) Cu3−xP nanocrystals onto a D-shaped optical fiber as an effective saturable absorber. The 3 dB bandwidth of the mode-locking optical spectrum is as broad as 7.3 nm, and the corresponding pulse duration can reach 423 fs. The repetition rate of the Q-switching pulses is higher than 80 kHz. Moreover, the largest pulse energy is more than 120 µJ. Note that laser characteristics are highly stable and repeatable based on the results of over 20 devices. This work may trigger further investigations on heavily doped plasmonic 2D nanocrystals as a next-generation, inexpensive, and solution-processed element for fascinating photonics and optoelectronics applications.

KeywordFiber Laser Mode-locking Plasmonic Semiconductors Ultrafast Generation
DOI10.1007/s12200-020-1018-y
URLView the original
Indexed ByESCI
Language英語English
WOS Research AreaEngineering
WOS SubjectEngineering, Electrical & Electronic
WOS IDWOS:000547244900004
PublisherHIGHER EDUCATION PRESS, CHAOYANG DIST, 4, HUIXINDONGJIE, FUSHENG BLDG, BEIJING 100029, PEOPLES R CHINA
Scopus ID2-s2.0-85087696808
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Citation statistics
Document TypeJournal article
CollectionINSTITUTE OF APPLIED PHYSICS AND MATERIALS ENGINEERING
Corresponding AuthorGuanyu Liu; Qiaoliang Bao
Affiliation1.Monash University
2.Soochow University
3.University of Macau
4.Jinan University
5.Jiangsu Normal University
Recommended Citation
GB/T 7714
Haoran Mu,Zeke Liu,Xiaozhi Bao,et al. Highly stable and repeatable femtosecond soliton pulse generation from saturable absorbers based on two-dimensional Cu3−xP nanocrystals[J]. Frontiers of Optoelectronics, 2020, 13(2), 139-148.
APA Haoran Mu., Zeke Liu., Xiaozhi Bao., Zhichen Wan., Guanyu Liu., Xiangping Li., Huaiyu Shao., Guichuan Xing., Babar Shabbir., Lei Li., Tian Sun., Shaojuan Li., Wanli Ma., & Qiaoliang Bao (2020). Highly stable and repeatable femtosecond soliton pulse generation from saturable absorbers based on two-dimensional Cu3−xP nanocrystals. Frontiers of Optoelectronics, 13(2), 139-148.
MLA Haoran Mu,et al."Highly stable and repeatable femtosecond soliton pulse generation from saturable absorbers based on two-dimensional Cu3−xP nanocrystals".Frontiers of Optoelectronics 13.2(2020):139-148.
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