首页> 外文期刊>Journal of chemical theory and computation: JCTC >Modeling Molecular Systems at Extreme Pressure by an Extension of the Polarizable Continuum Model (PCM) Based on the Symmetry-Adapted Cluster-Configuration Interaction (SAC-CI) Method: Confined Electronic Excited States of Furan as a Test Case
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Modeling Molecular Systems at Extreme Pressure by an Extension of the Polarizable Continuum Model (PCM) Based on the Symmetry-Adapted Cluster-Configuration Interaction (SAC-CI) Method: Confined Electronic Excited States of Furan as a Test Case

机译:通过基于对称适应的簇-构型相互作用(SAC-CI)方法的可极化连续体模型(PCM)的扩展,在极端压力下建模分子系统:呋喃的受限电子激发态作为测试案例

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Novel molecular photochemistry can be developed by combining high pressure and laser irradiation. For studying such high-pressure effects on the confined electronic ground and excited states, we extend the PCM (polarizable continuum model) SAC (symmetry-adapted cluster) and SAC-CI (SACconfiguration interaction) methods to the PCM-XP (extreme pressure) framework. By using the PCM-XP SAC/SAC-CI method, molecular systems in various electronic states can be confined by polarizable media in a smooth and flexible way. The PCM-XP SAC/SAC-CI method is applied to a furan (C(4)H4O) molecule in cyclohexane at high pressure (1-60 GPa). The relationship between the calculated free-energy and cavity volume can be approximately represented with the Murnaghan equation of state. The excitation energies of furan in cyclohexane show blueshifts with increasing pressure, and the extents of the blueshifts significantly depend on the character of the excitations. Particularly large confinement effects are found in the Rydberg states. The energy ordering of the lowest Rydberg and valence states alters under high-pressure. The pressure effects on the electronic structure may be classified into two contributions: a confinement of the molecular orbital and a suppression of the mixing between the valence and Rydberg configurations. The valence or Rydberg character in an excited state is, therefore, enhanced under high pressure.
机译:通过结合高压和激光辐照可以开发出新型的分子光化学。为了研究这种对受限电子基态和激发态的高压影响,我们将PCM(可极化连续体模型)SAC(对称适应性簇)和SAC-CI(SAC配置相互作用)方法扩展到PCM-XP(极压)框架。通过使用PCM-XP SAC / SAC-CI方法,可以用极化介质以平滑灵活的方式限制处于各种电子状态的分子系统。 PCM-XP SAC / SAC-CI方法在高压(1-60 GPa)下应用于环己烷中的呋喃(C(4)H4O)分子。计算出的自由能与腔体体积之间的关系可以用Murnaghan状态方程近似表示。环己烷中呋喃的激发能随压力增加而显示蓝移,并且该蓝移的程度明显取决于激发的特性。在里德堡州发现了特别大的限制作用。最低的里德堡和价态的能级在高压下会改变。对电子结构的压力作用可分为两个贡献:分子轨道的限制和化合价和里德堡构型之间混合的抑制。因此,在高压下,激发态的化合价或里德伯格特性得到增强。

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