软玻璃特种光纤中红外超连续谱的产生研究进展

IF 7.4 1区 物理与天体物理 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC Progress in Quantum Electronics Pub Date : 2021-08-01 DOI:10.1016/j.pquantelec.2021.100342
Than Singh Saini, Ravindra Kumar Sinha
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引用次数: 16

摘要

中红外区域(2 ~ 20 μm)是电磁波谱的重要区域。大多数分子,包括CH4、CO、NO、NO2、C6H6、TNT、NH3、SF6、HNO3、温室气体辐射等,其基本振动都在这个域中。因此,中红外区域被称为“分子指纹区”,并希望得到这些分子的签名。碲酸盐和硫系玻璃具有宽透明窗口(高达~20 μm)和非常高的光学非线性的优点,使它们成为中红外超连续谱产生的理想候选者。光子晶体光纤提供沿其长度的波长尺度的周期性结构排列。光子晶体的核心是光纤和基于不同几何形状和材料的二维光子晶体,由于各种非线性效应,在极宽的光谱范围内可以产生超连续谱。本文综述了碲酸盐和硫族玻璃两种新型光纤中红外超连续谱的研究进展。特别注意在阶梯折射率,悬芯,锥形和光子晶体光纤或微结构光纤在碲酸盐和硫系玻璃中的中红外超连续谱产生。综述了全向色散工程特种光纤中红外超连续谱产生的相干性。
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Mid-infrared supercontinuum generation in soft-glass specialty optical fibers: A review

Mid-infrared region (2–20 ​μm) is an important region of electromagnetic spectrum. Most of the molecules including CH4, CO, NO, NO2, C6H6, TNT, NH3, SF6, HNO3, greenhouse gas radiation etc. have their fundamental vibrations in this domain. Thus, the mid-infrared region is known as ‘molecular fingerprint region’ and desirable to get the signature of these molecules. Tellurite and chalcogenide glasses have the advantages of a wide transparency window (up to ~20 ​μm) and very high optical nonlinearities, making them decent candidates for the mid-infrared supercontinuum generation. Photonic crystal fibers provide the wavelength-scale periodic arrangement of microstructure along their length. The core of the photonic crystal fibers and two-dimensional photonic crystal based on diverse geometries and the materials, permitting supercontinuum generation due to various nonlinear effects in an enormously broad spectral range. In this review paper, we report the recent developments in the field of mid-infrared supercontinuum generation in both the tellurite and chalcogenide glass state-of-the-art optical fibers. Particular attention is paid to the mid-infrared supercontinuum generation in the step-index, suspended-core, tapered, and photonic crystal fibers or microstructured optical fibers in tellurite and chalcogenide glasses. The coherence property of mid-infrared supercontinuum generation in all-normal dispersion engineered specialty optical fibers is also reviewed.

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来源期刊
Progress in Quantum Electronics
Progress in Quantum Electronics 工程技术-工程:电子与电气
CiteScore
18.50
自引率
0.00%
发文量
23
审稿时长
150 days
期刊介绍: Progress in Quantum Electronics, established in 1969, is an esteemed international review journal dedicated to sharing cutting-edge topics in quantum electronics and its applications. The journal disseminates papers covering theoretical and experimental aspects of contemporary research, including advances in physics, technology, and engineering relevant to quantum electronics. It also encourages interdisciplinary research, welcoming papers that contribute new knowledge in areas such as bio and nano-related work.
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