论文标题

质子三嗪衍生物的电子和光学特性

Electronic and Optical Properties of Protonated Triazine Derivatives

论文作者

Guerrini, Michele, Aznar, Enrique Delgado, Cocchi, Caterina

论文摘要

共价有机框架(COF)的特殊电子和光学性质在很大程度上取决于质子化,这是一种在溶液中合成的溶液环境中的普遍现象。最终的影响是非平凡的,似乎对于这些材料的有趣功能至关重要。在时间依赖性密度功能理论的量子力学框架中,我们从第一原理研究了三嗪和氨基基团在水溶液中COF的分子构建块中的质子化的影响。在所有考虑的情况下,我们都会发现,质子的摄取导致质量降低,并导致电子结构的重组,这是由质子的存在以及带正电的质子化物种与其附近负电荷质子化物质之间的静电吸引力所驱动的。发现质子化引起的结构扭曲仅起着较小的作用。带隙重归其化和激子结合强度之间的相互作用决定了吸收量的能量:当前者在后者占上风时,就会观察到红移。此外,与原始的对应物相比,质子化时分子轨道的空间和能量重排会引起最低能量峰的分裂,并降低其振荡器强度。我们的结果为质子化对三嗪衍生物作为COF的构件的电子和光学特性的作用提供了定量和微观见解。因此,它们有助于使这些材料的结构,财产和功能之间的关系合理化。

The peculiar electronic and optical properties of covalent organic frameworks (COFs) are largely determined by protonation, a ubiquitous phenomenon in the solution environment in which they are synthesized. The resulting effects are non-trivial and appear to be crucial for the intriguing functionalities of these materials. In the quantum-mechanical framework of time-dependent density-functional theory, we investigate from first principles the impact of protonation of triazine and amino groups in molecular building blocks of COFs in water solution. In all considered cases, we find that proton uptake leads to a gap reduction and to a reorganization of the electronic structure, driven by the presence of the proton and by the electrostatic attraction between the positively charged protonated species and the negative counterion in its vicinity. Structural distortions induced by protonation are found to play only a minor role. The interplay between band-gap renormalization and exciton binding strength determines the energy of the absorption onsets: when the former prevails on the latter, a red-shift is observed. Furthermore, the spatial and energetic rearrangement of the molecular orbitals upon protonation induces a splitting of the lowest-energy peaks and a decrease of their oscillator strength in comparison with the pristine counterparts. Our results offer quantitative and microscopic insight into the role of protonation on the electronic and optical properties of triazine derivatives as building blocks of COFs. As such, they contribute to rationalize the relationships between structure, property, and functionality of these materials.

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