3.8 µm pulse burst self-optical parametric oscillator utilizing a programmable step-active Q-switch with Nd:MgO:PPLN crystal.

IF 3.2 2区 物理与天体物理 Q2 OPTICS Optics express Pub Date : 2024-11-04 DOI:10.1364/OE.542486
Xiaodai Yao, Erxian Xing, Hang Liu, Zijian Wang, Chao Wang, Guangyong Jin, Yongji Yu
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Abstract

This paper reports a 3.8 µm pulse burst self-optical parametric oscillator (SOPO) employing the Nd:MgO:PPLN crystal, achieving programmable mid-infrared pulse burst output based on step-active Q-switching technology. Building on the intracavity optical parametric oscillator (IOPO) theory, a theoretical model for the step-active Q-switched self-optical parametric oscillator is developed by introducing idler photon and step loss terms. The simulation results elucidate the evolution of population inversion and photon numbers and determine step-active Q-switching loss values for different sub-pulse numbers. Additionally, a 3.8 µm pulse burst laser output with a repetition rate of 10 kHz is experimentally achieved using the step-active Q-switching signal designed from the theoretical simulation. The effective programming of the step-active Q-switching signal achieves control over 2-4 sub-pulses, 260-1000 ns intervals, and any amplitude ratios. The experimental and simulation results demonstrate consistency, offering valuable insights for optimizing the Q-switching technology in other SOPO systems.

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利用带有 Nd:MgO:PPLN 晶体的可编程阶跃有源 Q 开关的 3.8 µm 脉冲猝发自光学参量振荡器。
本文报告了一种采用 Nd:MgO:PPLN 晶体的 3.8 µm 脉冲猝发自光参量振荡器(SOPO),该振荡器基于阶跃主动 Q 开关技术实现了可编程中红外脉冲猝发输出。在腔内光参量振荡器(IOPO)理论的基础上,通过引入惰光子和阶跃损耗项,建立了阶跃主动 Q 开关自光参量振荡器的理论模型。仿真结果阐明了种群反转和光子数的演变,并确定了不同子脉冲数的阶跃主动 Q 开关损耗值。此外,利用理论模拟设计的阶跃有源 Q 开关信号,实验实现了重复频率为 10 kHz 的 3.8 µm 脉冲猝发激光输出。阶跃有源 Q 开关信号的有效编程实现了对 2-4 个子脉冲、260-1000 ns 间隔和任意振幅比的控制。实验和仿真结果证明了两者的一致性,为在其他 SOPO 系统中优化 Q 开关技术提供了宝贵的启示。
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来源期刊
Optics express
Optics express 物理-光学
CiteScore
6.60
自引率
15.80%
发文量
5182
审稿时长
2.1 months
期刊介绍: Optics Express is the all-electronic, open access journal for optics providing rapid publication for peer-reviewed articles that emphasize scientific and technology innovations in all aspects of optics and photonics.
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