Hot-cavity linewidth enhancement factor of a quantum cascade laser

IF 5 2区 物理与天体物理 Q1 OPTICS Optics and Laser Technology Pub Date : 2025-04-01 Epub Date: 2024-11-28 DOI:10.1016/j.optlastec.2024.112112
Florian Pilat , Nikola Opačak , Sandro Dal Cin , Andreas Windischhofer , Etienne Giraud , Sargis Hakobyan , Richard Maulini , Antoine Muller , Pierre Jouy , Pitt Allmendinger , Benedikt Schwarz
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Abstract

The linewidth enhancement factor (LEF) of quantum cascade lasers (QCLs) is an important parameter, recently tightly linked to many phenomena that occur in this type of laser — from self-starting frequency combs to the emergence of solitons. The dynamic processes involved act at frequencies similar to the roundtrip frequency of the lasers (typically GHz), reflected in the high-frequency component of the LEF. Its value in QCLs is predicted to increase under laser operation with increasing light intensity, as the stronger gain saturation effectively increases the spectral gain asymmetry. Here, we investigate the hot-cavity LEF of a free-running frequency comb far above the laser threshold and at high frequencies, employing shifted wave interference Fourier transform spectroscopy (SWIFTS). Our measurements confirm an increasing LEF with laser current, which is supported by numerical simulations. From the spectral slope of the LEF we can extract further important parameters, such as the gain peak frequency and the decoherence time of the laser transition, which is tightly linked to the available gain bandwidth.
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量子级联激光器的热腔线宽增强因子
量子级联激光器(qcl)的线宽增强因子(LEF)是一个重要的参数,最近与这种类型激光器中发生的许多现象密切相关-从自启动频率梳到孤子的出现。所涉及的动态过程的频率与激光器的往返频率相似(通常为GHz),反映在LEF的高频成分中。在激光操作下,随着光强的增加,其在qcl中的值预计会增加,因为更强的增益饱和度有效地增加了光谱增益的不对称性。本文采用移波干涉傅立叶变换光谱(SWIFTS)研究了远高于激光阈值的自由运行频率梳在高频下的热腔LEF。我们的测量结果证实了随激光电流的增加而增加的LEF,数值模拟也支持了这一结果。从LEF的光谱斜率可以进一步提取重要的参数,如增益峰值频率和激光跃迁的退相干时间,这与可用增益带宽密切相关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
8.50
自引率
10.00%
发文量
1060
审稿时长
3.4 months
期刊介绍: Optics & Laser Technology aims to provide a vehicle for the publication of a broad range of high quality research and review papers in those fields of scientific and engineering research appertaining to the development and application of the technology of optics and lasers. Papers describing original work in these areas are submitted to rigorous refereeing prior to acceptance for publication. The scope of Optics & Laser Technology encompasses, but is not restricted to, the following areas: •development in all types of lasers •developments in optoelectronic devices and photonics •developments in new photonics and optical concepts •developments in conventional optics, optical instruments and components •techniques of optical metrology, including interferometry and optical fibre sensors •LIDAR and other non-contact optical measurement techniques, including optical methods in heat and fluid flow •applications of lasers to materials processing, optical NDT display (including holography) and optical communication •research and development in the field of laser safety including studies of hazards resulting from the applications of lasers (laser safety, hazards of laser fume) •developments in optical computing and optical information processing •developments in new optical materials •developments in new optical characterization methods and techniques •developments in quantum optics •developments in light assisted micro and nanofabrication methods and techniques •developments in nanophotonics and biophotonics •developments in imaging processing and systems
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