首页> 外文期刊>Journal of chemical theory and computation: JCTC >Ab Initio Treatment of Bond-Breaking Reactions: Accurate Course of HO3 Dissociation and Revisit to Isomerization
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Ab Initio Treatment of Bond-Breaking Reactions: Accurate Course of HO3 Dissociation and Revisit to Isomerization

机译:从头开始处理键断裂反应:HO3分解的精确过程并重新进入异构化

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An efficient scheme is devised for accurate studies of bond-breaking/forming reactions and illustrated for HO3. It is suggested and numerically demonstrated that an accurate dissociation path for the title system can be obtained by defining the central OO bond as the reaction coordinate. The approach consists of optimizing the dissociation path at the full-valence-complete-active space level of theory followed by single-point multireference configuration interaction calculations along it. Using large diffusely augmented basis sets of the correlation consistent type, accurate dissociation curves are then obtained for both the cis- and trans-HO3 isomers by extrapolating the calculated raw energies to the complete basis set limit. The profiles show a weak van der Waals type minimum and a small barrier, both lying below the dissociation asymptote, It is shown that this barrier arises at the break-off of the central OO chemical bond and onset of the OH···O2 hydrogen bond. The calculated dissociation energies (D_e) are 4.5 ±0.1 and 4.7 ±0.1 kcal mol~(-1) for the cis- and trans-HO3 isomers, respectively, with a very conservative estimate of the dissociation energy (D0) for trans-HO3 being 2.7 ± 0.2 kcal mol~(-1) and a more focused one being 2,8 ± 0.1 kcal mol~(-1). This result improves upon our previous estimate of this quantity while overlapping in the lower range of 2.9 ±0.1 kcal mol~(-1), the commonly accepted value from the low-temperature CRESU experiments. Since the cis-HO3 isomer is predicted to be 0.15 kcal mol~(-1) less stable than trans-HO3, this may partly explain the failure to obtain a clear characterization of the former. The isomerization (torsional) potential is also revisited and a comparison presented with a curve inferred from spectroscopic measurements. Good agreement is observed, with the accuracy of the new calculated data commending its use for the reanalysis of the available vibrational—rotational spectroscopic data.
机译:设计了一种有效的方案,用于精确研究键断裂/形成反应,并针对HO3进行了说明。建议并通过数值证明,通过将中心OO键定义为反应坐标,可以获得标题系统的准确解离路径。该方法包括在理论的全价-完全-活性空间水平上优化解离路径,然后沿其进行单点多参考配置相互作用计算。使用相关一致类型的较大的扩散增强基集,然后通过将计算出的原始能量外推到完整的基集极限值,可以获得顺式和反式HO3异构体的准确解离曲线。剖面显示出弱的范德华类型最小值和较小的势垒,均位于解离渐近线以下,表明该势垒出现在中心OO化学键的断裂和OH···O2氢的起始键。顺式和反式HO3异构体的解离能(D_e)分别为4.5±0.1和4.7±0.1 kcal mol〜(-1),反式-HO3的解离能(D0)非常保守是2.7±0.2 kcal mol〜(-1),更集中的是2,8±0.1 kcal mol〜(-1)。这一结果改进了我们先前对该量的估计,同时在2.9±0.1 kcal mol〜(-1)的较低范围内重叠,该范围是低温CRESU实验的公认值。由于预计顺式-HO3异构体的稳定性比反式-HO3低0.15 kcal mol〜(-1),因此这可能部分解释了未能获得前者的明确表征的原因。还重新探讨了异构化(扭转)电势,并通过光谱测量得出的曲线进行了比较。观察到了很好的一致性,其新计算数据的准确性称其用于重新分析可用的振动-旋转光谱数据。

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