Abstract

High-precision synchronization between pump and signal is one of the key issues that should be solved in picosecond short pulse pumped optical parametric chirped pulse amplification (ps-OPCPA). Based on the all-OPCPA laser facility in Research Center of Laser Fusion, China Academy of Engineering Physics, the high-precision active pump-signal synchronization technique used in its ps-OPCPA frontend is studied in detail in this paper. The synchronization is actively controlled by an amplified narrowband spectrum from the short ps-pulse pumped optical parametric amplification of a large chirped signal. By reasonably designing the time-domain broadening chirped coefficient of the signal in the feedback optical path, relative timing jitter between pump and signal of the ps-OPCPA frontend decreases from ps to one hundred fs, which greatly improves its energy and spectral stability. The root mean square (RMS) value of the relative timing jitter decreases from 458 to 93 fs, which improves the RMS instability of the output energy from 30.3% to 3.15%, and a stable wide spectrum with width greater than 100 nm is obtained in 7-min measurement.

Highlights

  • of the key issues that should be solved in picosecond short pulse pumped optical parametric chirped pulse amplification

  • high-precision active pump-signal synchronization technique used in its ps-OPCPA frontend is studied in detail

  • The synchronization is actively controlled by an amplified narrowband spectrum from the short ps-pulse pumped optical parametric amplification

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Summary

Introduction

在皮秒短脉冲泵浦的光参量啁啾脉冲放大(ps-OPCPA)系统中,泵浦光 与信号光之间的高精度时间同步是需要解决的关键问题之一。本文基于 中国工程物理研究院的全 OPCPA 激光装置,对用于前端 ps-OPCPA 中泵 浦光与信号光的高精度同步主动控制技术进行了详细研究。采用大啁啾 信号光窄光谱光参量放大的主动反馈方式,通过合理设计反馈光路信号 光的时域展宽啁啾系数,将泵浦光与信号光的同步时间抖动从 ps 量级降 低至百 fs 量级的时间范围,从而极大地改善了前端 ps-OPCPA 的能量和 光谱不稳定性:7 分钟测试时间内泵浦光与信号光相对同步时间抖动的 均方根值(RMS)从 458 fs 改善至 93 fs,输出能量 RMS 不稳定性从 30.3% 改善至 3.15%,且维持光谱宽度大于 100 nm 的稳定宽光谱输出。 关键词: 光参量啁啾脉冲放大,皮秒泵浦脉冲,高精度同步 PACS:42.55.-f, 42.65.Re, 42.65.Yj 长 800 nm,光谱底宽 120 nm(半高宽~60nm),重复频率 77.76 MHz,输出功率

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