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用 wannier 函数理解二维共价有机框架的电子π体系。

Understanding the electronic pi-system of 2D covalent organic frameworks with Wannier functions.

机构信息

TUM School of Natural Sciences, Technical University of Munich, Munich, Germany.

出版信息

Sci Rep. 2023 Jan 30;13(1):1685. doi: 10.1038/s41598-023-28285-w.

Abstract

We investigate a family of hexagonal 2D covalent organic frameworks (COFs) with phenyl and biphenyl spacer units and different chemical linker species. Chemical trends are elucidated and attributed to microscopic properties of the [Formula: see text]-electron-system spanned by atomic [Formula: see text]-orbitals. We systematically investigate the electronic structure, delocalization of electronic states, effects of disorder, bond torsion, and doping, and correlate these with variable [Formula: see text]-conjugation and nucleus-independent chemical shift (NICS) aromaticity. Molecular orbitals are obtained from maximally localized Wannier functions that have [Formula: see text]- and [Formula: see text]-character, forming distinct [Formula: see text]- and [Formula: see text]-bands for all valence states. The Wannier-orbital description goes beyond simple tight-binding models and enables a detailed understanding of the electronic topology, effective electronic coupling and delocalization. It is shown that a meaningful comparison between COFs with different chemical elements can only be made by examining the entire [Formula: see text]-electron system, while a comparison of individual bands (e.g., bands near the Fermi energy) can be a insufficient to derive general design rules for linker and spacer monomer selection. We further identify delocalized states that are spread across tens or hundreds of pores of the 2D COFs and analyze their robustness against structural and energetic disorders like out-of-plane rotations of molecular fragments, different strength of energetic disorder and energetic shifts due to chemical doping.

摘要

我们研究了一系列具有苯和联苯间隔单元以及不同化学连接体的六方二维共价有机骨架(COFs)。阐明了化学趋势,并将其归因于由原子π轨道跨越的π电子体系的微观性质。我们系统地研究了电子结构、电子态的离域、无序、键扭转和掺杂的影响,并将这些与可变π共轭和核独立化学位移(NICS)芳香性相关联。分子轨道是从具有π和π特征的最大局域化瓦尼尔函数中获得的,对于所有价态都形成了明显的π和π带。瓦尼尔轨道描述超越了简单的紧束缚模型,能够详细了解电子拓扑、有效电子耦合和离域。结果表明,只有通过检查整个π电子系统,才能对具有不同化学元素的 COFs 进行有意义的比较,而对单个能带(例如,费米能级附近的能带)的比较不足以得出用于连接体和间隔单体选择的一般设计规则。我们进一步确定了在二维 COFs 的数十或数百个孔中传播的离域态,并分析了它们对结构和能量无序(例如分子片段的面外旋转、不同的能量无序强度和化学掺杂引起的能量位移)的稳健性。

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