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Correlated product distributions from ketene dissociation measured by dc sliced ion imaging

机译:直流切片离子成像法测得的乙烯酮解离的相关产物分布

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Speed distributions of spectroscopically selected CO photoproducts of 308 nm ketene photodissociation have been measured by dc sliced ion imaging. Structured speed distributions are observed that match the clumps and gaps in the singlet CH2 rotational density of states. The effects of finite time gates in sliced ion imaging are important for the accurate treatment of quasicontinuous velocity distributions extending into the thickly sliced and fully projected regime, and an inversion algorithm has been implemented for the special case of isotropic fragmentation. With accurate velocity calibration and careful treatment of the velocity resolution, the new method allows us to characterize the coincident rotational state distribution of CH2 states as a smoothly varying deviation from an unbiased phase space theory (PST) limit, similar to a linear-surprisal analysis. High-energy rotational states of CH2 are underrepresented compared to PST in coincidence with all detected CO rotational states. There is no evidence for suppression of the fastest channels, as had been reported in two previous studies of this system by other techniques. The relative contributions of ground and first vibrationally excited singlet CH2 states in coincidence with selected rotational states of CO (upsilon=0) are well resolved and in remarkably good agreement with PST, despite large deviations from the PST rotational distributions in the CH2 fragments. At 308 nm, the singlet CH2 (upsilon(2)=0) and (upsilon(2)=1) channels are 2350 and 1000 cm(-1) above their respective thresholds. The observed vibrational branching is consistent with saturation at increasing energies of the energy-dependent suppression of rates with respect to the PST limit, attributed to a tightening variational transition state. (c) 2006 American Institute of Physics.
机译:通过直流切片离子成像测量了光谱选择的308 nm乙烯酮光解离的CO光产物的速度分布。观察到与单线态CH2旋转密度状态中的团块和间隙相匹配的结构化速度分布。切片离子成像中的有限时间门效应对于精确处理扩展到厚切片和完全投影状态的准连续速度分布非常重要,并且已经针对各向同性碎裂的特殊情况实施了反演算法。通过精确的速度校准和对速度分辨率的仔细处理,新方法使我们能够将CH2状态的一致旋转状态分布表征为与无偏相空间理论(PST)极限的平滑变化偏差,类似于线性意外分析。与所有检测到的CO旋转状态一致,与PST相比,CH2的高能旋转状态表示不足。正如先前通过其他技术对该系统进行的两项研究所报道的那样,没有证据可以抑制最快的信道。尽管与CH2片段中的PST旋转分布存在较大偏差,但与CO的选定旋转状态一致(upsilon = 0)的基态和第一个振动激发的单重态CH2状态的相对贡献已得到很好的解析,并且与PST非常一致。在308 nm处,单峰CH2(upsilon(2)= 0)和(upsilon(2)= 1)通道分别比其各自的阈值高2350和1000 cm(-1)。观察到的振动分支与相对于PST极限的速率相关能量抑制速率的增加能量处的饱和度一致,这归因于紧缩的变化过渡状态。 (c)2006年美国物理研究所。

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