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Excited state dynamics in SO2. I. Bound state relaxation studied by time-resolved photoelectron-photoion coincidence spectroscopy

机译:SO2中的激发态动力学。 I.通过时间分辨光电子-光子重合光谱研究束缚态弛豫

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摘要

The excited state dynamics of isolated sulfur dioxide molecules have been investigated using the time-resolved photoelectron spectroscopy and time-resolved photoelectron-photoion coincidence techniques. Excited state wavepackets were prepared in the spectroscopically complex, electronically mixed (B\u303)1B1/(\uc3)1A2, Clements manifold following broadband excitation at a range of photon energies between 4.03 eV and 4.28 eV (308 nm and 290 nm, respectively). The resulting wavepacket dynamics were monitored using a multiphoton ionisation probe. The extensive literature associated with the Clements bands has been summarised and a detailed time domain description of the ultrafast relaxation pathways occurring from the optically bright (B\u303)1B1 diabatic state is presented. Signatures of the oscillatory motion on the (B\u303) 1B1/(\uc3)1A2 lower adiabatic surface responsible for the Clements band structure were observed. The recorded spectra also indicate that a component of the excited state wavepacket undergoes intersystem crossing from the Clements manifold to the underlying triplet states on a sub-picosecond time scale. Photoelectron signal growth time constants have been predominantly associated with intersystem crossing to the (c\u303)3B2 state and were measured to vary between 750 and 150 fs over the implemented pump photon energy range. Additionally, pump beam intensity studies were performed. These experiments highlighted parallel relaxation processes that occurred at the one- and two-pump-photon levels of excitation on similar time scales, obscuring the Clements band dynamics when high pump beam intensities were implemented. Hence, the Clements band dynamics may be difficult to disentangle from higher order processes when ultrashort laser pulses and less-differential probe techniques are implemented.
机译:已使用时间分辨光电子能谱和时间分辨光电子-光子重合技术研究了分离的二氧化硫分子的激发态动力学。在宽带激发下,在4.03 eV和4.28 eV之间的光子能量范围(分别为308 nm和290 nm)下,在光谱复杂的电子混合(B \ u303)1B1 /(\ uc3)1A2,Clements流形中制备激发态波包)。使用多光子电离探针监测所得的波包动力学。总结了与Clements谱带相关的大量文献,并提出了由光学上明亮的(B \ u303)1B1非绝热状态引起的超快弛豫途径的详细时域描述。在(B \ u303)1B1 /(\ uc3)1A2下绝热表面上观察到振荡运动的信号负责了Clements能带结构。记录的光谱还表明,在亚皮秒级的时间内,激发态波包的一个分量经历了从Clements流形到下面的三重态的系统间交叉。光电子信号的生长时间常数主要与系统间穿越到(c \ u303)3B2状态有关,据测量,该常数在实现的泵浦光子能量范围内介于750至150 fs之间。另外,进行了泵浦光束强度研究。这些实验突出显示了在相似的时间尺度上,在一个和两个泵浦光子激发水平上发生的平行弛豫过程,从而在实现高泵浦光束强度时掩盖了克莱门茨带的动力学。因此,当实现超短激光脉冲和低差分探测技术时,克莱门茨带动力学可能难以从高阶过程中解脱出来。

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