Agwamba Ernest C, Louis Hitler, Olagoke Praise O, Gber Terkumbur E, Okon Gideon A, Fidelis Chidera F, Adeyinka Adedapo S
Computational and Bio-Simulation Research Group, University of Calabar Calabar Nigeria
Department of Chemistry, Covenant University Otta Nigeria.
RSC Adv. 2023 May 3;13(20):13624-13641. doi: 10.1039/d3ra01279d. eCollection 2023 May 2.
A magnesium-decorated graphene quantum dot (CH-Mg) surface has been examined theoretically using density functional theory (DFT) computations at the ωB97XD/6-311++G(2p,2d) level of theory to determine its sensing capability toward XH gases, where X = As, N and P, in four different phases: gas, benzene solvent, ethanol solvent and water. This research was carried out in different phases in order to predict the best possible phase for the adsorption of the toxic gases. Analysis of the electronic properties shows that in the different phases the energy gap follows the order NH@CH-Mg < PH@CH-Mg < AsH@CH-Mg. The results obtained from the adsorption studies show that all the calculated adsorption energies are negative, indicating that the nature of the adsorption is chemisorption. The adsorption energies can be arranged in an increasing trend of NH@CH-Mg < PH@CH-Mg < AsH@CH-Mg. The best adsorption performance was noted in the gas phase compared to the other studied counterparts. The interaction between the adsorbed gases and the surfaces shows a non-covalent interaction nature, as confirmed by the quantum theory of atoms-in-molecules (QTAIM) and non-covalent interactions (NCI) analysis. The overall results suggest that we can infer that the surface of the magnesium-decorated graphene quantum dot CH-Mg is more efficient for sensing the gas AsH than PH and NH.
利用密度泛函理论(DFT)计算,在ωB97XD/6 - 311++G(2p,2d)理论水平下,对镁修饰的石墨烯量子点(CH - Mg)表面进行了理论研究,以确定其在气相、苯溶剂、乙醇溶剂和水这四种不同相中对XH气体(其中X = As、N和P)的传感能力。进行这项研究的不同相是为了预测有毒气体吸附的最佳可能相。电子性质分析表明,在不同相中,能隙遵循NH@CH - Mg < PH@CH - Mg < AsH@CH - Mg的顺序。吸附研究获得的结果表明,所有计算得到的吸附能均为负值,这表明吸附的性质是化学吸附。吸附能可以按NH@CH - Mg < PH@CH - Mg < AsH@CH - Mg的递增趋势排列。与其他研究对象相比,在气相中观察到了最佳的吸附性能。如分子中的原子量子理论(QTAIM)和非共价相互作用(NCI)分析所证实的,吸附气体与表面之间的相互作用显示出非共价相互作用的性质。总体结果表明,我们可以推断,镁修饰的石墨烯量子点CH - Mg的表面对AsH气体的传感比对PH和NH更有效。