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Theoretical study of isomerization and dissociation of acetylene dication in the ground and excited electronic states

机译:基态和激发电子态中乙炔离子异构化和离解的理论研究

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Ab initio calculations employing the configuration interaction method including Davidson's corrections for quadruple excitations have been carried out to unravel the dissociation mechanism of acetylene dication in various electronic states and to elucidate ultrafast acetylene- vinylidene isomerization recently observed experimentally. Both in the ground triplet and the lowest singlet electronic states of C2H22+ the proton migration barrier is shown to remain high, in the range of 50 kcal/ mol. On the other hand, the barrier in the excited 2 (3)A" and 1 (3)A' states decreases to about 15 and 34 kcal/ mol, respectively, indicating that the ultrafast proton migration is possible in these states, especially, in 2 (3)A", even at relatively low available vibrational energies. Rice- Ramsperger- Kassel- Marcus calculations of individual reaction- rate constants and product branching ratios indicate that if C2H22+ dissociates from the ground triplet state, the major reaction products should be CCH+(3 Sigma(-))+ H+ followed by CH+ ((II)-I-3) + CH+ ((1)Sigma(+)) and with a minor contribution (similar to 1%) of C2H+ ((2)A(1)) + C+ (P-2). In the lowest singlet state, C2H+ ((2)A(1)) + C+ (P-2) are the major dissociation products at low available energies when the other channels are closed, whereas at E-int > 5 eV, the CCH+ ((1)A') + H+ products have the largest branching ratio, up to 70% and higher, that of CH+ ((1)Sigma(+)) + CH+ ((1)Sigma(+)) is in the range of 25% - 27%, and the yield of C2H++C+ is only 2% - 3%. The calculated product branching ratios at E-int approximate to 17 eV are in qualitative agreement with the available experimental data. The appearance thresholds calculated for the CCH++ H+, CH+ + CH+, and C2H++ C+ products are 34.25, 35.12, and 34.55 eV. The results of calculations in the presence of strong electric field show that the field can make the vinylidene isomer unstable and the proton elimination spontaneous, but is unlikely to significantly reduce the barrier for the acetylene- vinylidene isomerization and to render the acetylene configuration unstable or metastable with respect to proton migration. (c) 2005 American Institute of Physics.
机译:已经进行了使用包括四重激发的戴维森校正在内的构型相互作用方法进行的从头算计算,以揭示各种电子状态下乙炔离子的离解机理,并阐明最近在实验中观察到的超快乙炔-亚乙烯基异构化。在基态三重态和C2H22 +的最低单重态电子态中,质子迁移势垒均保持较高,范围为50 kcal / mol。另一方面,在激发的2(3)A“和1(3)A'状态下的势垒分别降至约15 kcal / mol和34 kcal / mol,表明在这些状态下超快质子迁移是可能的,特别是,在2(3)A“中,即使在相对较低的可用振动能量下也是如此。 Rice-Ramsperger-Kassel-Marcus各自反应速率常数和产物分支比的计算表明,如果C2H22 +从三重态分离,则主要反应产物应为CCH +(3 Sigma(-))+ H +,然后是CH +(( II)-I-3)+ CH +((1)Sigma(+)),并且贡献较小的C2H +((2)A(1))+ C +(P-2)(约占1%)。在最低单重态下,当其他通道关闭时,C2H +((2)A(1))+ C +(P-2)是低可用能量下的主要离解产物,而在E-int> 5 eV时,CCH + ((1)A')+ H +产物具有最大的分支比,最高可达70%或更高,CH +((1)Sigma(+))+ CH +((1Sigma)(+)的范围在25%-27%,而C2H ++ C +的产率仅为2%-3%。在E-int处计算得出的产物支化比约为17 eV,与可用的实验数据在质量上一致。计算出的CCH ++ H +,CH + + CH +和C2H ++ C +产物的外观阈值为34.25、35.12和34.55 eV。在强电场存在下的计算结果表明,该电场可使亚乙烯基异构体不稳定,质子自发消失,但不太可能显着降低乙炔-亚乙烯基异构化的壁垒,并使乙炔构型不稳定或亚稳关于质子迁移。 (c)2005年美国物理研究所。

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