Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/95346
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Title: Mid-infrared self-similar compression of picosecond pulse in an inversely tapered silicon ridge waveguide
Authors: Yuan, J 
Chen, J
Li, F 
Mei, C 
Kang, Z 
Zhang, X 
Xu, Y 
Yan, B
Sang, X
Wu, Q
Zhou, X 
Zhong, K 
Wang, K
Yu, C
Farrell, G
Wai, PKA 
Issue Date: 25-Dec-2017
Source: Optics express, 25 Dec. 2017, v. 25, no. 26, p. 33439-33450
Abstract: On chip high quality and high degree pulse compression is desirable in the realization of integrated ultrashort pulse sources, which are important for nonlinear photonics and spectroscopy. In this paper, we design a simple inversely tapered silicon ridge waveguide with exponentially decreasing dispersion profile along the propagation direction, and numerically investigate self-similar pulse compression of the fundamental soliton within the mid-infrared spectral region. When higher-order dispersion (HOD), higher-order nonlinearity (HON), losses (α), and variation of the Kerr nonlinear coefficient γ(z) are considered in the extended nonlinear Schrödinger equation, a 1 ps input pulse at the wavelength of 2490 nm is successfully compressed to 57.29 fs in only 5.1-cm of propagation, along with a compression factor Fc of 17.46. We demonstrated that the impacts of HOD and HON are minor on the pulse compression process, compared with that of α and variation of γ(z). Our research results provide a promising solution to realize integrated mid-infrared ultrashort pulse sources.
Publisher: Optical Society of America
Journal: Optics express 
EISSN: 1094-4087
DOI: 10.1364/OE.25.033439
Rights: © 2017 Optical Society of America under the terms of the OSA Open Access Publishing Agreement (https://opg.optica.org/library/license_v1.cfm#VOR-OA)
© 2017 Optica Publishing Group under the terms of the Open Access Publishing Agreement. Users may use, reuse, and build upon the article, or use the article for text or data mining, so long as such uses are for non-commercial purposes and appropriate attribution is maintained. All other rights are reserved.
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