大正色散掺镱光纤激光器的耗散孤子共振与类噪声脉冲的产生

IF 0.7 4区 物理与天体物理 Q4 OPTICS Optica Applicata Pub Date : 2022-01-01 DOI:10.37190/oa220106
Yuzhai Pan, Haoxue Qiu, Tianqi Zhang, Wenjun Liu, Jieguang Miao, Tian Zhaoshuo
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引用次数: 2

摘要

本文利用非线性光环镜(NOLM)实验证明了锁模光纤激光器中两种类型的耗散孤子谐振(DSR)和类噪声脉冲(NLP)。通过适当调整偏振态,可以在一个锁模光纤激光器中实现DSR和NLP的切换产生。通过调节泵浦功率,DSR的脉冲宽度在峰值强度恒定的情况下从2.45 ns逐渐增大到13.35 ns,而NLP仅略有增加,在高泵浦功率下甚至分裂成两个更窄的脉冲。两种类型的DSR和NLP具有相同的脉冲周期1.29 μs,对应于光纤激光器的腔长。所得结果显示了锁模光纤激光器中DSR脉冲和NLP的演化过程,在光学传感、光谱反射、微加工等相关领域具有一定的应用价值。
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Dissipative soliton resonance and noise-like pulse generation of large normal dispersion Yb-doped fiber laser
In this paper, we experimentally demonstrate two types of dissipative soliton resonant (DSR) and noise-like pulse (NLP) in a mode-locked fiber laser using the nonlinear optical loop mirror (NOLM). By appropriately adjusting the polarization states, the switchable generation of DSR and NLP can be achieved from one mode-locked fiber laser. By adjusting the pump power, the pulse width of DSR increases gradually from 2.45 to 13.35 ns with a constant peak intensity, while the NLP just has a little increase, even splitting into two narrower pulses at higher pump power. Two types of DSR and NLP have the same pulse periods of 1.29 μs, corresponding to the cavity length of the fiber laser. The obtained results display the evolution process of DSR pulse and NLP in mode-locked fiber laser and have some application in optical sensing, spectral reflectometry, micromachining, and other relative domains.
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来源期刊
Optica Applicata
Optica Applicata 物理-光学
CiteScore
1.00
自引率
16.70%
发文量
21
审稿时长
4 months
期刊介绍: Acoustooptics, atmospheric and ocean optics, atomic and molecular optics, coherence and statistical optics, biooptics, colorimetry, diffraction and gratings, ellipsometry and polarimetry, fiber optics and optical communication, Fourier optics, holography, integrated optics, lasers and their applications, light detectors, light and electron beams, light sources, liquid crystals, medical optics, metamaterials, microoptics, nonlinear optics, optical and electron microscopy, optical computing, optical design and fabrication, optical imaging, optical instrumentation, optical materials, optical measurements, optical modulation, optical properties of solids and thin films, optical sensing, optical systems and their elements, optical trapping, optometry, photoelasticity, photonic crystals, photonic crystal fibers, photonic devices, physical optics, quantum optics, slow and fast light, spectroscopy, storage and processing of optical information, ultrafast optics.
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