首页> 外文期刊>The Journal of Chemical Physics >Ultrafast alpha-CC bond cleavage of acetone upon excitation to 3p and 3d Rydberg states by femtosecond time-resolved photoelectron imaging
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Ultrafast alpha-CC bond cleavage of acetone upon excitation to 3p and 3d Rydberg states by femtosecond time-resolved photoelectron imaging

机译:飞秒时间分辨光电子成像激发3p和3d Rydberg态时丙酮的超快α-CC键裂解

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The radiationless electronic relaxation and alpha-CC bond fission dynamics of jet-cooled acetone in the S-1 (n pi*) state and in high-lying 3p and 3d Rydberg states have been investigated by femtosecond time-resolved mass spectrometry and photoelectron imaging. The S1 state was accessed by absorption of a UV pump photon at selected wavelengths between lambda = 320 and 250 nm. The observed acetone mass signals and the S-1 photoelectron band decayed on sub-picosecond time scales, consistent with a recently proposed ultrafast structural relaxation of the molecules in the S1 state away from the Franck-Condon probe window. No direct signatures could be observed by the experiments for CC dissociation on the S-1 potential energy hypersurface in up to 1 ns. The observed acetyl mass signals at all pump wavelengths turned out to be associated with absorption by the molecules of one or more additional pump and/or probe photons. In particular, absorption of a second UV pump photon by the S-1 (n pi*) state was found to populate a series of high-lying states belonging to the n = 3 Rydberg manifold. The respective transitions are favored by much larger cross sections compared to the S-1 <- S-0 transition. The characteristic energies revealed by the photoelectron images allowed for assignments to the 3p and 3d(yz) states. At two-photon excitation energies higher than 8.1 eV, an ultrafast reaction pathway for breaking the alpha-CC bond in 50-90 fs via the 3d(yz) Rydberg state and the elusive pi pi* state was observed, explaining the formation of acetyl radicals after femtosecond laser excitation of acetone at these wavelengths. Published by AIP Publishing.
机译:飞秒时间分辨质谱和光电子成像研究了喷射冷却的丙酮在S-1(n pi *)态和高3p和3d Rydberg态下的无辐射电子弛豫和α-CC键裂变动力学。通过在λ= 320和250 nm之间的选定波长处吸收紫外泵浦光子来进入S1状态。所观察到的丙酮质量信号和S-1光电子能带在亚皮秒级的时间内衰减,这与最近提出的S1态分子远离Franck-Condon探针窗口的超快结构弛豫一致。在长达1 ns的时间内,S-1势能超表面上CC的离解实验无法观察到任何直接特征。在所有泵浦波长处观察到的乙酰基质量信号被证明与一个或多个其他泵浦和/或探针光子的分子的吸收有关。特别是,发现第二紫外泵浦光子被S-1(n pi *)态吸收后,会填充一系列属于n = 3 Rydberg流形的高位态。与S-1 <-S-0过渡相比,较大的横截面有利于各个过渡。由光电子图像揭示的特征能量允许分配给3p和3d(yz)态。在高于8.1 eV的双光子激发能下,观察到通过3d(yz)Rydberg状态和难以捉摸的pi pi *状态在50-90 fs内破坏α-CC键的超快反应路径,从而解释了乙酰基的形成飞秒激光激发丙酮在这些波长下产生自由基。由AIP Publishing发布。

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