首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Theoretical Studies for the Rates and Kinetic Isotope Effects of the Excited-State Double Proton Transfer in the 1:1 7-Azaindole:H2O Complex Using Variational Transition State Theory Including Multidimensional Tunneling
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Theoretical Studies for the Rates and Kinetic Isotope Effects of the Excited-State Double Proton Transfer in the 1:1 7-Azaindole:H2O Complex Using Variational Transition State Theory Including Multidimensional Tunneling

机译:包含多维隧穿的变分过渡态理论对1:1 7-氮杂吲哚:H2O络合物中激发态双质子转移速率和动力学同位素效应的理论研究

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摘要

Variational transition state theory calculations including multidimensional tunneling (VTST/MT) for excitedstate tautomerization in the 1:1 7-azaindole:H2O complex were performed. Electronic structures and energies for reactant, product, transition state, and potential energy curves along the reaction coordinate were computedat the CASSCF(10,9)/6-31G(d,p) level of theory. The potential energies were corrected by second-order multireference perturbation theory to take the dynamic electron correlation into consideration. The final potential energy curves along the reaction coordinate were generated at the MRPT2//CASSCF(10,9)/6-31G(d,p) level. Two protons in the excited-state tautomerization are transferred concertedly, albeit asynchronously. The position of the variational transition state is very different from the conventional transition state, and is highly ependent on isotopic substitution. Rate constants were calculated using VTST/MT, and were on the order of 10-6 s-1 at room temperature. The HH/DD kinetic isotope effects are consistent with experimental observations; consideration of both tunneling and variational effects was essential to predict the experimental values correctly.
机译:进行了变迁过渡态理论计算,包括多维隧道效应(VTST / MT),用于1:1 7-氮杂吲哚:H2O络合物中的激发态互变异构。在CASSCF(10,9)/ 6-31G(d,p)的理论水平上计算了沿反应坐标的反应物,产物,过渡态和势能曲线的电子结构和能量。利用二阶多参考微扰理论校正了势能,以考虑动态电子相关性。沿着反应坐标的最终势能曲线在MRPT2 // CASSCF(10,9)/ 6-31G(d,p)水平生成。处于激发态互变异构的两个质子尽管不同步也可以协同转移。变异过渡态的位置与常规过渡态非常不同,并且高度依赖于同位素取代。使用VTST / MT计算速率常数,室温下约为10-6 s-1。 HH / DD动力学同位素效应与实验观察结果一致。为了正确预测实验值,必须同时考虑隧道效应和变异效应。

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