Suppr超能文献

关于与ZIF成核过程相关的钴配合物光谱指纹图谱的预测

On the Prediction of Spectroscopic Fingerprints of Co Complexes Relevant for the ZIF Nucleation Process.

作者信息

De Bruecker Liesbeth, Filez Matthias, Van Speybroeck Veronique

机构信息

Center for Molecular Modeling (CMM), Ghent University, Technologiepark-Zwijnaarde 46, 9052 Zwijnaarde, Belgium.

Conformal Coating of Nanomaterials (CoCooN), Ghent University, Krijgslaan 281/S1, 9000 Gent, Belgium.

出版信息

Inorg Chem. 2023 Oct 9;62(40):16304-16322. doi: 10.1021/acs.inorgchem.3c01355. Epub 2023 Sep 27.

Abstract

The nucleation process of zeolitic imidazolate frameworks (ZIFs) is to date not completely understood. Recently, it has been found that, during the formation of Co-ZIF-67, after mixing imidazole-type ligands with octahedral precursors containing oxygen-coordinated ligands, a metal-organic pool with a diversity of transition metal complexes (TMCs) is formed showing fingerprints of octahedral and tetrahedral Co complexes with both types of ligands [Filez, M. 2021, 2, 100680]. In order to further unravel this process, we aim to characterize the d-d transitions of the TMCs and focus on their number, intensity, and position, which change during the process and can thus serve as a fingerprint for the formed species. It was previously shown that the number of ligands and symmetry has a detrimental influence on the ground state properties of Co TMCs. Herein, we investigate how far excited state properties of TMCs relevant during nanoporous formation processes can be predicted by time-dependent density functional theory (TDDFT) and ligand field density functional theory (LFDFT). As TMCs are known to be challenging systems with possibly degenerate ground states and double excitations, we first investigate the performance of both techniques on first-row octahedral aqua-complexes. With this knowledge, we then focus on tetrahedral Co complexes with aqua and imidazole-type ligands in order to investigate in how far we can propose a spectroscopic fingerprint that allows us to follow the Co complexes during the formation of Co-ZIF-67. The results of TDDFT and LFDFT are qualitatively in agreement and provide complementary information. We found that various features can be used to distinguish between the species. However, as LFDFT is not suited for TMCs possessing the extended imidazole-type ligands and double and spin-flip states are not included in TDDFT, both techniques need to be complemented with more advanced methods to obtain complete insight into the d-d excitations of TMCs with imidazole ligands. Therefore, we particularly explored ab initio ligand field theory, which is capable of describing double excitations and is, in contrast to LFDFT, suitable for TMCs with extended ligands.

摘要

迄今为止,沸石咪唑酯骨架材料(ZIFs)的成核过程尚未完全明晰。最近发现,在Co-ZIF-67的形成过程中,将咪唑型配体与含氧配位配体的八面体前驱体混合后,会形成一个具有多种过渡金属配合物(TMCs)的金属有机库,呈现出八面体和四面体Co配合物与两种配体的特征 [Filez, M. 2021, 2, 100680]。为了进一步揭示这一过程,我们旨在表征TMCs的d-d跃迁,并关注其数量、强度和位置,这些在过程中会发生变化,因此可作为所形成物种的特征。此前已表明,配体数量和对称性对Co TMCs的基态性质有不利影响。在此,我们研究在纳米多孔形成过程中相关的TMCs激发态性质能在多大程度上通过含时密度泛函理论(TDDFT)和配体场密度泛函理论(LFDFT)进行预测。由于已知TMCs是具有可能简并基态和双激发的具有挑战性的体系,我们首先研究这两种技术在第一行八面体水合配合物上的性能。基于此认识,我们随后聚焦于具有水和咪唑型配体的四面体Co配合物,以研究我们能在多大程度上提出一种光谱特征,使我们能够在Co-ZIF-67形成过程中追踪Co配合物。TDDFT和LFDFT的结果在定性上是一致的,并提供了互补信息。我们发现各种特征可用于区分这些物种。然而,由于LFDFT不适用于具有扩展咪唑型配体的TMCs,且TDDFT不包括双激发和自旋翻转态,这两种技术都需要用更先进的方法进行补充,以全面了解具有咪唑配体的TMCs的d-d激发。因此,我们特别探索了从头算配体场理论,它能够描述双激发,并且与LFDFT不同,适用于具有扩展配体的TMCs。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验