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高次阈上分子解离。

High-order above-threshold dissociation of molecules.

机构信息

State Key Laboratory of Precision Spectroscopy, East China Normal University, 200062 Shanghai, China;

Key Laboratory of Laser Plasmas (Ministry of Education), School of Physics and Astronomy, Shanghai Jiao Tong University, 200240 Shanghai, China.

出版信息

Proc Natl Acad Sci U S A. 2018 Feb 27;115(9):2049-2053. doi: 10.1073/pnas.1719481115. Epub 2018 Feb 13.

Abstract

Electrons bound to atoms or molecules can simultaneously absorb multiple photons via the above-threshold ionization featured with discrete peaks in the photoelectron spectrum on account of the quantized nature of the light energy. Analogously, the above-threshold dissociation of molecules has been proposed to address the multiple-photon energy deposition in the nuclei of molecules. In this case, nuclear energy spectra consisting of photon-energy spaced peaks exceeding the binding energy of the molecular bond are predicted. Although the observation of such phenomena is difficult, this scenario is nevertheless logical and is based on the fundamental laws. Here, we report conclusive experimental observation of high-order above-threshold dissociation of H in strong laser fields where the tunneling-ionized electron transfers the absorbed multiphoton energy, which is above the ionization threshold to the nuclei via the field-driven inelastic rescattering. Our results provide an unambiguous evidence that the electron and nuclei of a molecule as a whole absorb multiple photons, and thus above-threshold ionization and above-threshold dissociation must appear simultaneously, which is the cornerstone of the nowadays strong-field molecular physics.

摘要

束缚在原子或分子上的电子可以通过上述阈值电离同时吸收多个光子,这一现象的特点是在光电子能谱中出现离散的峰,这是由于光能量的量子性质。类似地,分子的上述阈值离解被提议用于解决分子核中多光子能量的沉积问题。在这种情况下,预测到由超过分子键结合能的光子能间隔峰组成的核能谱。尽管观察到这种现象很困难,但这种情况在逻辑上是合理的,并且基于基本定律。在这里,我们报告了在强激光场中 H 的高阶上述阈值离解的明确实验观察,其中隧道电离电子通过场驱动的非弹性再散射将吸收的多光子能量,该能量高于离化阈值,传递到原子核。我们的结果提供了明确的证据,证明分子的电子和原子核整体吸收多个光子,因此上述阈值电离和上述阈值离解必须同时出现,这是当今强场分子物理的基石。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d04d/5834714/17d31837270d/pnas.1719481115fig01.jpg

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