Baum Peter, Lochbrunner Stefan, Riedle Eberhard
Lehrstuhl für BioMolekulare Optik, Ludwig-Maximilians-Universität, Oettingenstrasse, München, Germany.
Opt Lett. 2004 Jul 15;29(14):1686-8. doi: 10.1364/ol.29.001686.
Tunable UV pulses shorter than 10 fs are generated by achromatic frequency doubling of a noncollinear optical parametric amplifier. With a suitable two-prism sequence we achieve first- and second-order achromatic phase matching and increase the natural bandwidth of the nonlinear crystal by a factor of 80. Extremely broad UV spectra with a Fourier limit of 2.9 fs are generated in a 360-microm-thick beta-barium borate crystal at a conversion efficiency of 20%. We compensate for the angular dispersion and the first-order chirp of the highly stable UV pulses with a second prism sequence and fully characterize the temporal pulse shape with zero-additional-phase spectral phase interferometry for direct electric-field reconstruction (ZAP-SPIDER). Pulses as short as 7 fs are generated by controlling the higher-order chirp with a deformable mirror.
通过非共线光学参量放大器的消色差倍频产生了短于10飞秒的可调谐紫外脉冲。利用合适的双棱镜序列,我们实现了一阶和二阶消色差相位匹配,并将非线性晶体的自然带宽提高了80倍。在一块360微米厚的β-硼酸钡晶体中,以20%的转换效率产生了傅里叶极限为2.9飞秒的极宽紫外光谱。我们用第二个棱镜序列补偿了高度稳定的紫外脉冲的角色散和一阶啁啾,并通过用于直接电场重建的零附加相位光谱相位干涉术(ZAP-SPIDER)对时间脉冲形状进行了全面表征。通过使用可变形镜控制高阶啁啾,产生了短至7飞秒的脉冲。