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C60 的强度分辨红外多光子电离和碎裂。

Intensity-resolved IR multiple photon ionization and fragmentation of C60.

机构信息

FOM Institute for Plasma Physics, Rijnhuizen, Edisonbaan 14, NL-3439 MN Nieuwegein, The Netherlands.

出版信息

J Chem Phys. 2010 Feb 21;132(7):074305. doi: 10.1063/1.3313926.

Abstract

The sequential absorption of multiple infrared (IR) photons by isolated gas-phase species can lead to their dissociation and/or ionization. Using the newly constructed "Free-Electron Laser for IntraCavity Experiments" (FELICE) beam line at the FELIX facility, neutral C(60) molecules have been exposed to an extremely high number (approximately 10(23)) of photons/cm(2) for a total time duration of up to 5 micros. At wavelengths around 20 microm, resonant with allowed IR transitions of C(60), ionization and extensive fragmentation of the fullerenes are observed. The resulting photofragment distributions are attributed to absorption in fragmentation products formed once C(60) is excited to internal energies at which fragmentation or ionization takes place within the duration of the laser pulse. The high IR intensities available combined with the large interaction volume permit spatially resolved detection of the ions inside the laser beam, thereby disentangling the contributions from different IR intensities. The use of spatial imaging reveals intensity dependent mass distributions that are substantially narrower than what has been observed previously, indicating rather narrow energy distributions. A simple rate-equation modeling of the excitation process supports the experimental observations.

摘要

孤立气相物种连续吸收多个红外(IR)光子可导致其离解和/或电离。使用在 FELIX 设施中的新构建的“腔内实验自由电子激光”(FELICE)光束线,中性 C(60)分子已经暴露于极高数量(约 10(23))的光子/cm(2),总持续时间长达 5 微秒。在波长约 20 微米处,与 C(60)的允许 IR 跃迁共振,观察到富勒烯的电离和广泛的碎裂。所得光碎片分布归因于一旦 C(60)被激发到其中在激光脉冲持续时间内发生碎裂或电离的内部能量,在碎片产物中吸收。可用的高 IR 强度与大相互作用体积相结合,允许在激光束内空间分辨地检测离子,从而解耦来自不同 IR 强度的贡献。使用空间成像揭示了与先前观察到的相比显著更窄的强度依赖性质量分布,表明相当窄的能量分布。对激发过程的简单速率方程建模支持实验观察。

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