具有瓦级平均输出功率的铥/钬共掺光纤激光器中的高能噪声脉冲

IF 3.1 3区 物理与天体物理 Q2 Engineering Optik Pub Date : 2024-08-03 DOI:10.1016/j.ijleo.2024.171984
Adalid Ibarra-Garrido , Manuel Durán-Sánchez , Edwin Addiel Espinosa-De-La-Cruz , Ulises Alcántara-Bautista , Ivan Armas-Rivera , Luis Alberto Rodríguez-Morales , Miguel Bello-Jiménez , Baldemar Ibarra-Escamilla
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引用次数: 0

摘要

实验演示了一种铥/钬共掺光纤激光器,其中心波长为 1985 nm,可发出高能量的类噪声矩形脉冲。实验装置基于一个 298 米长的非线性光学环镜。通过将泵浦功率从 3 W 调整到 10 W,类噪声矩形脉冲的宽度可分别从 2.8 ns 调整到 15.2 ns,在最大泵浦功率为 10 W 的情况下,可获得 1.45 W 的平均输出功率。脉冲重复率为 671 kHz。因此,可获得脉冲能量为 2.16 µJ 的高能光脉冲,峰值功率估计为 142 W。据我们所知,这些脉冲直接由激光腔产生,在近 2 µm 波长区域的噪声类脉冲发射中具有最高的平均输出功率和脉冲能量。所提出的激光源具有最直接的全光纤腔设计,可用于产生高能量的类噪声矩形脉冲,因此在科学研究和作为中红外超连续产生的泵浦源方面具有潜在的应用前景。
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High-energy noise-like pulsing in a thulium/holmium co-doped fiber laser with watt-level average output power

A Thulium/Holmium co-doped fiber laser with high-energy noise-like rectangular pulses at the central wavelength of 1985 nm is experimentally demonstrated. The experimental setup is based on a 298-m long nonlinear optical loop mirror. By varying the pump power from 3 to 10 W, the noise-like rectangular pulse width can be tuned from 2.8 to 15.2 ns, respectively, and under a maximum pump power of 10 W, 1.45 W of average output power is obtained. The pulse repetition rate is 671 kHz. Consequently, highly energetic optical pulses with 2.16 µJ pulse energy and an estimated peak power of 142 W are achieved. To the best of our knowledge, these pulses, which are generated directly from the laser cavity, possess the highest average output power and pulse energy for noise-like pulse emission in the near 2 µm wavelength region. The proposed laser source has the most straightforward all-fiber cavity design that has been proposed for generating high-energy noise-like rectangular pulses, and as such has potential applications in scientific research and as a pump source for mid-infrared supercontinuum generation.

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来源期刊
Optik
Optik 物理-光学
CiteScore
6.90
自引率
12.90%
发文量
1471
审稿时长
46 days
期刊介绍: Optik publishes articles on all subjects related to light and electron optics and offers a survey on the state of research and technical development within the following fields: Optics: -Optics design, geometrical and beam optics, wave optics- Optical and micro-optical components, diffractive optics, devices and systems- Photoelectric and optoelectronic devices- Optical properties of materials, nonlinear optics, wave propagation and transmission in homogeneous and inhomogeneous materials- Information optics, image formation and processing, holographic techniques, microscopes and spectrometer techniques, and image analysis- Optical testing and measuring techniques- Optical communication and computing- Physiological optics- As well as other related topics.
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