在具有负群速度色散的光纤中通过放大的清晰脉冲产生类噪声脉冲

IF 1.4 4区 物理与天体物理 Q3 OPTICS
Kuan-Yuan Chang, Jia-Ming Liu
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引用次数: 0

摘要

我们通过实验和数值计算证明,在负群速度色散区域的波长上,通过向光纤放大器泵入定义良好的脉冲(WDP),可以产生类噪声脉冲(NLP)。通过研究光脉冲的演变过程,可以发现输出脉冲由泵浦波长的 NLP 和斯托克斯波长的分裂孤子组成,这是由于脉冲内拉曼散射和孤子裂变过程造成的。这种脉冲分裂过程会产生峰值功率远高于未分裂的 WDP 的子脉冲,从而使 WDP 能够强烈诱导非线性效应。这一发现解决了以往研究中使用皮秒 WDP 产生超连续的实验和模拟结果之间的差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Noise-like pulse generation by amplified well-defined pulse in an optical fiber with negative group velocity dispersion
We experimentally and numerically demonstrate that noise-like pulses (NLPs) can be generated by pumping well-defined pulses (WDPs) into an optical fiber amplifier at a wavelength in the region of negative group velocity dispersion. Through investigating the evolution of the optical pulses, it is realized that the output pulses consist of NLPs at the pump wavelength and split solitons at Stokes wavelengths, due to intrapulse Raman scattering followed by the process of soliton fission. Such process of pulse breakup results in the generation of sub-pulses that have peak powers much higher than the unbroken WDPs have, enabling WDPs to strongly induce nonlinear effects. This finding resolves the discrepancy between the experiment and simulation results of supercontinuum generation by using picosecond WDPs in previous research.
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来源期刊
Laser Physics Letters
Laser Physics Letters 物理-仪器仪表
CiteScore
3.30
自引率
11.80%
发文量
174
审稿时长
2.4 months
期刊介绍: Laser Physics Letters encompasses all aspects of laser physics sciences including, inter alia, spectroscopy, quantum electronics, quantum optics, quantum electrodynamics, nonlinear optics, atom optics, quantum computation, quantum information processing and storage, fiber optics and their applications in chemistry, biology, engineering and medicine. The full list of subject areas covered is as follows: -physics of lasers- fibre optics and fibre lasers- quantum optics and quantum information science- ultrafast optics and strong-field physics- nonlinear optics- physics of cold trapped atoms- laser methods in chemistry, biology, medicine and ecology- laser spectroscopy- novel laser materials and lasers- optics of nanomaterials- interaction of laser radiation with matter- laser interaction with solids- photonics
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