Fedotov A B, Voronin A A, Serebryannikov E E, Fedotov I V, Mitrofanov A V, Ivanov A A, Sidorov-Biryukov D A, Zheltikov A M
Department of Physics, M. V. Lomonosov Moscow State University, Vorob'evy gory, Moscow 119992, Russia.
Phys Rev E Stat Nonlin Soft Matter Phys. 2007 Jan;75(1 Pt 2):016614. doi: 10.1103/PhysRevE.75.016614. Epub 2007 Jan 25.
While the standard scenario of third-harmonic generation (THG) by a dispersive-wave pump involves the emission of light with a frequency 3omega, thrice the frequency omega of the input pump field, solitons undergoing a continuous shift of their central frequency omega due to the Raman effect in a multimode optical fiber can generate the third harmonic in a different fashion. In the experiments reported here, we provide the first direct experimental evidence of THG by a continuously red-shifting soliton pump by studying the third-harmonic buildup in relation to the spectral evolution of the soliton pump field in a silica photonic-crystal fiber (PCF). We show that solitons excited in a PCF by unamplified femtosecond pulses of a Cr:forsterite laser sweep through the spectral range from 1.25 to 1.63 microm , scanning through a manifold of THG phase-matching resonances with 3omega dispersive waves in PCF modes. As a result, intense third-harmonic peaks build up in the range of wavelengths from 370 to 550 nm at the output of the fiber, making PCF a convenient fiber-format multifrequency source of short-wavelength radiation. Time-resolved fluorescence measurements with photoexcitation provided by the third-harmonic PCF output are presented, demonstrating the high potential of PCF sources for an ultrafast photoexcitation of fluorescent molecular systems in physics, chemistry, and biology.
虽然色散波泵浦产生三次谐波(THG)的标准情形涉及发射频率为3ω的光,即输入泵浦场频率ω的三倍,但由于多模光纤中的拉曼效应,中心频率ω不断发生偏移的孤子可以以不同方式产生三次谐波。在本文报道的实验中,我们通过研究二氧化硅光子晶体光纤(PCF)中三次谐波的积累与孤子泵浦场的光谱演化之间的关系,首次提供了连续红移孤子泵浦产生THG的直接实验证据。我们表明,由Cr:镁橄榄石激光器的未放大飞秒脉冲在PCF中激发的孤子扫过1.25至1.63微米的光谱范围,扫描通过PCF模式中与3ω色散波的一系列THG相位匹配共振。结果,在光纤输出端,波长范围为370至550纳米处形成了强烈的三次谐波峰值,使PCF成为一种方便的光纤形式的短波长辐射多频源。本文还展示了利用三次谐波PCF输出提供的光激发进行时间分辨荧光测量,证明了PCF源在物理、化学和生物学中对荧光分子系统进行超快光激发的巨大潜力。