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研究一氧化碳气体在镁卟啉纳米环(Mg4@PNR4)上吸附情况的计算密度泛函理论(DFT)

The computational density functional theory (DFT) investigating the CO gas adsorption on magnesium porphyrin nanorings (Mg4@PNR4).

作者信息

Arshadi Sattar, Behmagham Farnaz, Aziz Qusay Husam, Al-Shami Karrar R, Tariq Hayder, Ubaid Mohammed

机构信息

Department of Chemical Engineering, University of Science and Technology of Mazandaran, Behshahr, Iran.

Department of Chemistry, Miandoab Branch, Islamic Azad University, Miandoab, Iran.

出版信息

J Mol Graph Model. 2025 Jun;137:108996. doi: 10.1016/j.jmgm.2025.108996. Epub 2025 Feb 28.

Abstract

The decorated butadiyne-linked four porphyrin nanorings with four magnesium cations (Mg4@PNR4) represented a novel class of nanoscale molecules. This Mg4@PNR4 system could be considered as a high surface area with favorable chemical and physical properties which has inherent ability to form hydrogen and covalent bonds. The Mg4@PNR4 system could contribute to air purification and greenhouse gas decrease by efficiently capturing toxic gases such as carbon dioxide and nitrogen oxides. This study aims to scrutinise and improve the CO gas sensing capacity of the Mg4@PNR4 system with four porphyrin rings using density functional theory (DFT). In all configurations, the adsorption values were negative which indicates adsorption process is physical and reversible. Also, the CO gas adsorption, in all configurations, increased the band gap of nanoring by 114-121 % and reduced the conductivity of the nanoring. Additionally, the recovery times were in the range of nano, pico and femto seconds which showed the rapid desorption of CO gas after physical adsorption. According to the NBO investigations, the amount of positive charge in the magnesium ions decreases and the positive charge in the gas increases during the adsorption of CO molecule on the nanoring. Eventually, the FMO analysis and the electron transfer amount (ΔN) showed that the electrons were transferring from CO to the porphyrin nanoring.

摘要

带有四个镁阳离子的修饰丁二炔连接的四卟啉纳米环(Mg4@PNR4)代表了一类新型的纳米级分子。这个Mg4@PNR4体系可被视为具有良好化学和物理性质的高表面积体系,它具有形成氢键和共价键的内在能力。Mg4@PNR4体系可以通过有效捕获二氧化碳和氮氧化物等有毒气体来促进空气净化和减少温室气体。本研究旨在利用密度泛函理论(DFT)来仔细研究并提高具有四个卟啉环的Mg4@PNR4体系对一氧化碳气体的传感能力。在所有构型中,吸附值均为负,这表明吸附过程是物理性的且可逆。此外,在所有构型中,一氧化碳气体的吸附使纳米环的带隙增加了114 - 121%,并降低了纳米环的电导率。另外,恢复时间在纳秒、皮秒和飞秒范围内,这表明一氧化碳气体在物理吸附后能快速解吸。根据自然键轨道(NBO)研究,在纳米环上吸附一氧化碳分子的过程中,镁离子上的正电荷量减少,而气体上的正电荷量增加。最终,前线分子轨道(FMO)分析和电子转移量(ΔN)表明电子从一氧化碳转移到了卟啉纳米环上。

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