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Picosecond excitation and selective intramolecular rates in supersonic molecular beams. III. Photochemistry and rates of a charge transfer reaction

机译:超音速分子束中的皮秒激发和选择性分子内速率。三,光化学和电荷转移反应的速率

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摘要

The picosecond state-selective dynamics and photochemistry of the molecule A–(CH2)3–[cursive phi], where A and [cursive phi] are aromatic chromophores, was studied under collision-free conditions in a supersonic beam. Time-resolved fluorescence measurements of the reactant and the charge transfer (exciplex) product were undertaken as a function of specific vibrational energy above the zero point level of S1. From these studies along with an analysis of the excitation spectra, dispersed flourescence, and quantum yields, the following results and conclusions were reached: (i) IVR is much faster than reaction at all excess energies studied. (ii) The energy threshold for product formation is E0[approximately-equal-to]900 cm^−1 (2.6 kcal/mol). The analysis of the rates using an effective temperature model gives a frequency factor of A0[approximately-equal-to]1.2×10^10 s^−1. Four torsions were identified as critical to the reaction dynamics which were modeled according to a multidimensional reaction coordinate using an RRKM scheme. (iii) The thermodynamics of the isolated charge transfer product indicates strong stabilization DeltaH=−9.2 kcal/mol and extensive charge transfer, the static dipole moment is 13 D, and the charge transfer contribution to the total electronic wave function |c2|^2 is 0.86. (iv) A comparison of the present work to solution phase studies of A–(CH2)3–[cursive phi] indicates similar static properties but different dynamics. The calculated thermal (room temperature) reaction time for exciplex formation in the vapor (540 ps) was compared to the shortest observed value in solution (1.4 ns) to assess the role of the solvent on the chain motions which lead to product formation.
机译:在超声波束中,在无碰撞条件下研究了分子A–(CH2)3-α的皮秒状态选择性动力学和光化学反应,其中A和Φ是芳香族发色团。反应物和电荷转移(激态)产物的时间分辨荧光测量是在S1的零点以上的特定振动能量的函数。通过这些研究以及对激发光谱,分散荧光和量子产率的分析,得出以下结果和结论:(i)在所有研究的过剩能量下,IVR比反应快得多。 (ii)产物形成的能量阈值是E0 [大约等于] 900cm -1(2.6kcal / mol)。使用有效温度模型对速率进行分析,得出频率因子A0 [约等于] 1.2×10 ^ 10 s ^ -1。确定了四个扭转对反应动力学至关重要,这些扭转是使用RRKM方案根据多维反应坐标建模的。 (iii)分离的电荷转移产物的热力学表明稳定的DeltaH = -9.2 kcal / mol和广泛的电荷转移,静态偶极矩为13 D,并且电荷转移对总电子波函数| c2 | ^ 2的贡献是0.86。 (iv)将当前工作与A–(CH2)3– [草递phi]的溶液相研究进行比较,可以得出相似的静态特性,但动态特性却不同。将计算出的在蒸气中形成激基复合物的热(室温)反应时间(540 ps)与溶液中最短的观测值(1.4 ns)进行比较,以评估溶剂在导致产物形成的链运动中的作用。

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