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分子模拟在用于气体吸附应用的金属有机框架材料开发中的作用。

Role of molecular modelling in the development of metal-organic framework for gas adsorption applications.

作者信息

Jose Reshma, Bangar Garima, Pal Sourav, Rajaraman Gopalan

机构信息

Department of Chemistry, Indian Institute of Technology Bombay, Powai, Mumbai, 400076 India.

Department of Chemistry, Ashoka University, Sonepat, Haryana 131029 India.

出版信息

J Chem Sci (Bangalore). 2023;135(2):19. doi: 10.1007/s12039-022-02130-5. Epub 2023 Mar 14.

Abstract

UNLABELLED

More than 47,000 articles have been published in the area of Metal-Organic Framework since its seminal discovery in 1995, exemplifying the intense research carried out in this short span of time. Among other applications, gas adsorption and storage are perceived as central to the MOFs research, and more than 10,000 MOFs structures are reported to date to utilize them for various gas storage/separation applications. Molecular modeling, particularly based on density functional theory, played a key role in (i) understanding the nature of interactions between the gas and the MOFs geometry (ii) establishing various binding pockets and relative binding energies, and (iii) offering design clues to improve the gas uptake capacity of existing MOF architectures. In this review, we have looked at various MOFs that are studied thoroughly using DFT/periodic DFT (pDFT) methods for CO, H, O, and CH gases to provide a birds-eye-view on how various exchange-correlation functionals perform in estimating the binding energy for various gases and how factors such as nature of the (i) metal ion, (ii) linkers, (iii) ligand, (iv) spin state and (v) spin-couplings play a role in this process with selected examples. While there is still room for improvement, the rewards offered by the molecular modelling of MOFs were already substantial that we advocate experimental and theoretical studies to go hand-in-hand to undercut the trial-and-error approach that is often perceived in the selection of MOFs and gas partners in this area.

GRAPHICAL ABSTRACT

The importance of density functional theory-based molecular modeling studies in offering design clues to improve the gas adsorption and storage capacity of existing MOF architectures is discussed here. The use of DFT-based investigation in conjunction with experimental synthesis is an imperative tool in designing new-generation MOFs with enhanced uptake capacity.

摘要

未标注

自1995年金属有机框架首次被发现以来,该领域已发表了超过47000篇文章,这体现了在如此短的时间内所开展的深入研究。在众多应用中,气体吸附和存储被视为金属有机框架研究的核心,据报道,迄今为止已有超过10000种金属有机框架结构被用于各种气体存储/分离应用。分子建模,尤其是基于密度泛函理论的建模,在以下方面发挥了关键作用:(i)理解气体与金属有机框架几何结构之间相互作用的本质;(ii)确定各种结合位点和相对结合能;(iii)为提高现有金属有机框架结构的气体吸附能力提供设计线索。在本综述中,我们研究了使用密度泛函理论/周期性密度泛函理论(pDFT)方法对一氧化碳、氢气、氧气和甲烷气体进行深入研究的各种金属有机框架,以鸟瞰各种交换相关泛函在估算各种气体结合能时的表现,以及(i)金属离子、(ii)连接体、(iii)配体、(iv)自旋态和(v)自旋耦合等因素在这一过程中是如何通过选定的实例发挥作用的。尽管仍有改进空间,但金属有机框架分子建模所带来的回报已经相当可观,我们主张实验研究和理论研究携手并进,以避免在该领域选择金属有机框架和气体配对时经常采用地反复试验方法。

图形摘要

本文讨论了基于密度泛函理论的分子建模研究在为提高现有金属有机框架结构的气体吸附和存储能力提供设计线索方面的重要性。将基于密度泛函理论的研究与实验合成相结合,是设计具有更高吸附能力的新一代金属有机框架的必要工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bfbf/10011768/241eaf569960/12039_2022_2130_Fig1_HTML.jpg

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