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Unraveling substituent effects on frontier orbitals of conjugated molecules using an absolutely localized molecular orbital based analysis

机译:利用绝对局部分子轨道基于分析解开缀合分子的前沿轨道的取代基因

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It is common to introduce electron-donating or electron-withdrawing substituent groups into functional conjugated molecules (such as dyes) to tune their electronic structure properties (such as frontier orbital energy levels) and photophysical properties (such as absorption and emission wavelengths). However, there lacks a generally applicable tool that can unravel the underlying interactions between orbitals from a substrate molecule and those from its substituents in modern electronic structure calculations, despite the long history of qualitative molecular orbital theory. In this work, the absolutely localized molecular orbitals (ALMO) based analysis is extended to analyze the effects of substituent groups on the highest occupied molecular orbital (HOMO) and lowest unoccupied molecular orbital (LUMO) of a given system. This provides a bottom-up avenue towards quantification of effects from distinct physical origins ( e.g. permanent electrostatics/Pauli repulsion, mutual polarization, inter-fragment orbital mixing). For the example case of prodan (a typical dye molecule), it is found that inter-fragment orbital mixing plays a key role in narrowing the HOMO–LUMO gap of the naphthalene core. Specifically, an out-of-phase mixing of high-lying occupied orbitals on the naphthalene core and the dimethylamino group leads to an elevated HOMO, whereas an in-phase combination of LUMOs on the naphthalene core and the propionyl group lowers the LUMO energy of the entire molecule. We expect this ALMO-based analysis to bridge the gap between concepts from qualitative orbital interaction analysis and quantitative electronic structure calculations.
机译:通常将电子提供的电子或吸电子取代基的取代基引入功能缀合分子(例如染料)中,以调节它们的电子结构性质(例如前轨道能量水平)和光学性质(例如吸收和发射波长)。然而,尽管定性分子轨道理论的历史历史历史历史悠久,但缺乏一般适用的工具,可以解开来自底物分子的眶下与底物分子之间的差异相互作用和现代电子结构计算中的取代基。在这项工作中,延长了绝对局部分子轨道(ALMO)的分析,以分析取代基对给定系统的最高占用分子轨道(HOMO)和最低未占用的分子轨道(LUMO)的影响。这为从不同的物理起源的效果提供了自下而上的大道(例如,永久静电/保利排斥,相互极化,片段间轨道混合)。对于ProDa(典型染料分子)的示例情况,发现片段间轨道混合在缩小萘核心的同源叶片间隙方面发挥着关键作用。具体地,高躺型含有萘核和二甲基氨基的高位占用轨道的超相混合导致升高的均匀,而Lumos对萘核和丙酰基的同相组合降低了Lumo能量整个分子。我们预计这一基于ALMO的分析弥合了定性轨道相互作用分析和定量电子结构计算的概念之间的差距。

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