超短脉冲
光参量放大器
放大器
激光器
参数统计
频域
光学
物理
包络线(雷达)
非线性光学
放大
时域
功率(物理)
相(物质)
光放大器
光电子学
计算机科学
电信
量子力学
统计
CMOS芯片
数学
计算机视觉
雷达
作者
Bruno E. Schmidt,Nicolas Thiré,M. Boivin,Antoine Laramée,Francois Poitras,G. Lebrun,T. Ozaki,Heide Ibrahim,François Légaré
摘要
Today’s ultrafast lasers operate at the physical limits of optical materials to reach extreme performances. Amplification of single-cycle laser pulses with their corresponding octave-spanning spectra still remains a formidable challenge since the universal dilemma of gain narrowing sets limits for both real level pumped amplifiers as well as parametric amplifiers. We demonstrate that employing parametric amplification in the frequency domain rather than in time domain opens up new design opportunities for ultrafast laser science, with the potential to generate single-cycle multi-terawatt pulses. Fundamental restrictions arising from phase mismatch and damage threshold of nonlinear laser crystals are not only circumvented but also exploited to produce a synergy between increased seed spectrum and increased pump energy. This concept was successfully demonstrated by generating carrier envelope phase stable, 1.43 mJ two-cycle pulses at 1.8 μm wavelength. Optical parametric amplification is a process that amplifies the power of laser pulses. Here, Schmidt and colleagues demonstrate that performing this amplification in the frequency domain rather than the optical domain could lead to higher power outputs.
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