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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Photodissociation Dynamics of the Thiophenoxy Radical at 248, 193, and 157 nm
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Photodissociation Dynamics of the Thiophenoxy Radical at 248, 193, and 157 nm

机译:噻吩氧基自由基在248、193和157 nm处的光解离动力学

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The photodissociation dynamics of the thiophenoxy radical (C_6H_5S) have been investigated using fast beam coincidence translational spectroscopy. Thiophenoxy radicals were produced by photodetachment of the thiophenoxide anion followed by photodissociation at 248 nm (5.0 eV), 193 nm (6.4 eV), and 157 nm (7.9 eV). Experimental results indicate two major competing dissociation channels leading to SH + C_6H_4 (o-benzyne) and CS + C_5H_5 (cyclopentadienyl) with a minor contribution of S + C_6H_5 (phenyl). Photofragment mass distributions and translational energy distributions were measured at each dissociation wavelength. Transition states and minima for each reaction pathway were calculated using density functional theory to facilitate experimental interpretation. The proposed dissociation mechanism involves internal conversion from the initially prepared electronic excited state to the ground electronic state followed by statistical dissociation. Calculations show that SH loss involves a single isomerization step followed by simple bond fission. For both SH and S loss, C?S bond cleavage proceeds without an exit barrier. By contrast, the CS loss pathway entails multiple transition states and minima as it undergoes five membered ring formation and presents a small barrier with respect to products. The calculated reaction pathway is consistent with the experimental translational energy distributions in which the CS loss channel has a broader distribution peaking farther away from zero than the corresponding distributions for SH loss.
机译:硫苯氧基自由基(C_6H_5S)的光解离动力学已使用快速光束重合平移光谱学进行了研究。噻吩氧基阴离子通过光解离,然后在248 nm(5.0 eV),193 nm(6.4 eV)和157 nm(7.9 eV)上进行光解离而产生噻吩氧基。实验结果表明,两个主要的竞争性解离通道导致SH + C_6H_4(邻苯并ne)和CS + C_5H_5(环戊二烯基),而S + C_6H_5(苯基)的贡献较小。在每个解离波长下测量光碎片质量分布和平移能量分布。使用密度泛函理论计算每个反应途径的过渡态和最小值,以促进实验解释。拟议的解离机制涉及从最初准备的电子激发态到基态电子态的内部转换,然后进行统计解离。计算表明,SH损失涉及单个异构化步骤,然后进行简单的键裂变。对于SH和S损失,进行C 2 S键裂解而没有出口障碍。相比之下,CS损失途径需要经历多个五元环形成并具有相对于产物的较小障碍,因此具有多个过渡态和最小值。所计算的反应路径与实验平移能量分布一致,其中CS损失通道比SH损失的相应分布具有更宽的分布峰,远离零更远。

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