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BN-芳烃的电子结构:可靠计算工具的选择。

Electronic structure of BN-aromatics: Choice of reliable computational tools.

机构信息

Université de Pau et des Pays de l'Adour, Institut des Sciences Analytiques et de Physico-Chimie pour l'Environnement et les Matériaux, IPREM, UMR CNRS 5254, Avenue de l'Université, 64000 Pau, France.

Université de Lyon, Université Claude Bernard Lyon-1, ENS-Lyon, Institut des Sciences Analytiques, UMR CNRS 5280, 43 Boulevard du 11 Novembre 1918, F-69622 Villeurbanne Cedex, France.

出版信息

J Chem Phys. 2017 Oct 28;147(16):164306. doi: 10.1063/1.4993297.

Abstract

The importance of having reliable calculation tools to interpret and predict the electronic properties of BN-aromatics is directly linked to the growing interest for these very promising new systems in the field of materials science, biomedical research, or energy sustainability. Ionization energy (IE) is one of the most important parameters to approach the electronic structure of molecules. It can be theoretically estimated, but in order to evaluate their persistence and propose the most reliable tools for the evaluation of different electronic properties of existent or only imagined BN-containing compounds, we took as reference experimental values of ionization energies provided by ultra-violet photoelectron spectroscopy (UV-PES) in gas phase-the only technique giving access to the energy levels of filled molecular orbitals. Thus, a set of 21 aromatic molecules containing B-N bonds and B-N-B patterns has been merged for a comparison between experimental IEs obtained by UV-PES and various theoretical approaches for their estimation. Time-Dependent Density Functional Theory (TD-DFT) methods using B3LYP and long-range corrected CAM-B3LYP functionals are used, combined with the ΔSCF approach, and compared with electron propagator theory such as outer valence Green's function (OVGF, P3) and symmetry adapted cluster-configuration interaction ab initio methods. Direct Kohn-Sham estimation and "corrected" Kohn-Sham estimation are also given. The deviation between experimental and theoretical values is computed for each molecule, and a statistical study is performed over the average and the root mean square for the whole set and sub-sets of molecules. It is shown that (i) ΔSCF+TDDFT(CAM-B3LYP), OVGF, and P3 are the most efficient way for a good agreement with UV-PES values, (ii) a CAM-B3LYP range-separated hybrid functional is significantly better than B3LYP for the purpose, especially for extended conjugated systems, and (iii) the "corrected" Kohn-Sham result is a fast and simple way to predict IEs.

摘要

拥有可靠的计算工具来解释和预测 BN-芳族化合物的电子性质对于材料科学、生物医学研究或能源可持续性领域中这些极有前途的新系统的日益关注至关重要。电离能 (IE) 是接近分子电子结构的最重要参数之一。它可以从理论上进行估计,但为了评估它们的持久性并为评估现有或仅想象的 BN 化合物的不同电子性质提出最可靠的工具,我们参考了气相中紫外光电子能谱 (UV-PES) 提供的实验值。- 唯一能够获得填充分子轨道能级的技术。因此,我们合并了一组 21 个含有 B-N 键和 B-N-B 模式的芳香族分子,以比较通过 UV-PES 获得的实验 IE 和各种理论方法对其进行的估计。使用 B3LYP 和长程校正 CAM-B3LYP 函数的时间相关密度泛函理论 (TD-DFT) 方法与 ΔSCF 方法结合,并与电子传播子理论(如外价格林函数 (OVGF, P3) 和对称性适应簇-构型相互作用从头计算方法)进行比较。还给出了直接 Kohn-Sham 估计和“校正”Kohn-Sham 估计。为每个分子计算实验值和理论值之间的偏差,并对整个分子集和分子子集的平均值和均方根进行统计研究。结果表明:(i) ΔSCF+TDDFT(CAM-B3LYP)、OVGF 和 P3 是与 UV-PES 值取得良好一致的最有效方法,(ii) 用于该目的的 CAM-B3LYP 分域混合泛函明显优于 B3LYP,特别是对于扩展共轭体系,以及 (iii) “校正”的 Kohn-Sham 结果是预测 IE 的快速简单方法。

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