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用于可调谐激光发展的连续波激光与超快频率梳激光之间和频产生的联合实验与计算表征

Joint Experimental and Computational Characterization of Sum-Frequency Generation between a Continuous Wave Laser and an Ultrafast Frequency Comb Laser for Tunable Laser Development.

作者信息

Zhan Jie, Cooper Nicholas D, Reber Melanie A R

机构信息

Department of Chemistry, University of Georgia, Athens, Georgia 30602, United States.

出版信息

ACS Photonics. 2025 Jan 29;12(2):786-791. doi: 10.1021/acsphotonics.4c01783. eCollection 2025 Feb 19.

Abstract

Ultrafast optical frequency combs allow for both high spectral and temporal resolution in molecular spectroscopy and have become a powerful tool in many areas of chemistry and physics. Ultrafast lasers and frequency combs generated from ultrafast mode-locked lasers often need to be converted to other wavelengths. Commonly used wavelength conversions are optical parametric oscillators, which require an external optical cavity, and supercontinuum generation combined with optical parametric amplifiers. Whether commercial or home-built, these systems are complex and costly. Here, we investigate an alternative, simple, and easy-to-implement approach to tunable frequency comb ultrafast lasers enabled by new continuous-wave laser technology. Sum-frequency generation between an Nd:YAG continuous-wave laser and a Yb:fiber femtosecond frequency comb in a beta-barium borate (BBO) crystal is explored. The resulting sum-frequency beam is a pulsed frequency comb with the same repetition rate as the Yb:fiber source. SNLO simulation software is used to simulate the results and provide benchmarks for designing future systems to achieve wavelength conversion and tunability in otherwise difficult-to-reach spectral regions.

摘要

超快光学频率梳在分子光谱学中兼具高光谱分辨率和高时间分辨率,已成为化学和物理诸多领域的强大工具。超快激光器以及由超快锁模激光器产生的频率梳常常需要转换到其他波长。常用的波长转换方法有需要外部光学腔的光学参量振荡器,以及与光学参量放大器相结合的超连续谱产生。无论商业化还是自制的,这些系统都很复杂且成本高昂。在此,我们研究一种由新型连续波激光技术实现的、用于可调谐频率梳超快激光器的替代方法,该方法简单且易于实施。我们探索了在β-硼酸钡(BBO)晶体中,Nd:YAG连续波激光器与Yb:光纤飞秒频率梳之间的和频产生。产生的和频光束是一个具有与Yb:光纤源相同重复频率的脉冲频率梳。使用SNLO模拟软件来模拟结果,并为设计未来系统提供基准,以便在其他难以到达的光谱区域实现波长转换和可调谐性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/66c8/11843715/eadab333ff80/ph4c01783_0001.jpg

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