Kraus P M, Tolstikhin O I, Baykusheva D, Rupenyan A, Schneider J, Bisgaard C Z, Morishita T, Jensen F, Madsen L B, Wörner H J
Laboratorium für Physikalische Chemie, ETH Zürich, 8093 Zürich, Switzerland.
Moscow Institute of Physics and Technology, Dolgoprudny 141700, Russia.
Nat Commun. 2015 May 5;6:7039. doi: 10.1038/ncomms8039.
All attosecond time-resolved measurements have so far relied on the use of intense near-infrared laser pulses. In particular, attosecond streaking, laser-induced electron diffraction and high-harmonic generation all make use of non-perturbative light-matter interactions. Remarkably, the effect of the strong laser field on the studied sample has often been neglected in previous studies. Here we use high-harmonic spectroscopy to measure laser-induced modifications of the electronic structure of molecules. We study high-harmonic spectra of spatially oriented CH3F and CH3Br as generic examples of polar polyatomic molecules. We accurately measure intensity ratios of even and odd-harmonic orders, and of the emission from aligned and unaligned molecules. We show that these robust observables reveal a substantial modification of the molecular electronic structure by the external laser field. Our insights offer new challenges and opportunities for a range of emerging strong-field attosecond spectroscopies.
到目前为止,所有阿秒时间分辨测量都依赖于强近红外激光脉冲的使用。特别是,阿秒条纹技术、激光诱导电子衍射和高次谐波产生都利用了非微扰光与物质的相互作用。值得注意的是,在以往的研究中,强激光场对所研究样品的影响常常被忽视。在此,我们利用高次谐波光谱来测量激光诱导的分子电子结构变化。我们研究了空间取向的CH₃F和CH₃Br的高次谐波光谱,以此作为极性多原子分子的典型例子。我们精确测量了偶数和奇数谐波阶次的强度比,以及取向和未取向分子的发射强度比。我们表明,这些稳健的可观测量揭示了外部激光场对分子电子结构的实质性改变。我们的见解为一系列新兴的强场阿秒光谱学带来了新的挑战和机遇。