Theoretical Modeling of B12N12 Nanocage for the Effective Removal of Paracetamol from Drinking Water

IF 1.9 Q2 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS Computation Pub Date : 2023-09-14 DOI:10.3390/computation11090183
None Kainat, Sana Gul, Qaisar Ali, Momin Khan, Munir Ur Rehman, Mohammad Ibrahim, Abdullah F. AlAsmari, Fawaz Alasmari, Metab Alharbi
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引用次数: 2

Abstract

In our current investigation, we employed a B12N12 nanocage to extract paracetamol from water utilizing a DFT approach. We explored three distinct positions of paracetamol concerning its interaction with the B12N12 nanocage, designated as complex-1 (BNP-1), complex-2 (BNP-2), and complex-3 (BNP-3), under both aqueous and gaseous conditions. The optimized bond distances exhibited strong interactions between the nanocage and the paracetamol drug in BNP-1 and BNP-3. Notably, BNP-1 and BNP-3 displayed substantial chemisorption energies, measuring at −27.94 and −15.31 kcal/mol in the gas phase and −30.69 and −15.60 kcal/mol in the aqueous medium, respectively. In contrast, BNP-2 displayed a physiosorbed nature, indicating weaker interactions with values of −6.97 kcal/mol in the gas phase and −4.98 kcal/mol in the aqueous medium. Our analysis of charge transfer revealed significant charge transfer between the B12N12 nanocage and paracetamol. Additionally, a Quantum Theory of Atoms in Molecules (QTAIM) analysis confirmed that the O─B bond within BNP-1 and BNP-3 exhibited a strong covalent and partial bond, encompassing both covalent and electrostatic interactions. In contrast, the H─N bond within BNP-2 displayed a weaker hydrogen bond. Further investigation through Noncovalent Interaction (NCI) and Reduced Density Gradient (RDG) analyses reinforced the presence of strong interactions in BNP-1 and BNP-3, while indicating weaker interactions in BNP-2. The decrease in the electronic band gap (Eg) demonstrated the potential of B12N12 as a promising adsorbent for paracetamol. Examining thermodynamics, the negative values of ∆H (enthalpy change) and ∆G (Gibbs free energy change) pointed out the exothermic and spontaneous nature of the adsorption process. Overall, our study underscores the potential of B12N12 as an effective adsorbent for eliminating paracetamol from wastewater.
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B12N12纳米笼有效去除饮用水中扑热息痛的理论建模
在我们目前的研究中,我们采用了B12N12纳米笼,利用DFT方法从水中提取扑热息痛。我们研究了扑热息痛与B12N12纳米笼相互作用的三个不同位置,分别为络合物-1 (BNP-1)、络合物-2 (BNP-2)和络合物-3 (BNP-3),在水溶液和气态条件下。优化后的键距显示了纳米笼与BNP-1和BNP-3中扑热息痛药物之间的强相互作用。值得注意的是,BNP-1和BNP-3表现出了可观的化学吸附能,在气相中分别为- 27.94和- 15.31 kcal/mol,在水相中分别为- 30.69和- 15.60 kcal/mol。相反,BNP-2表现出物理吸附性质,在气相和水相的相互作用较弱,分别为- 6.97 kcal/mol和- 4.98 kcal/mol。我们的电荷转移分析表明,B12N12纳米笼和扑热息痛之间存在显著的电荷转移。此外,分子原子量子理论(QTAIM)分析证实,BNP-1和BNP-3中的O─B键表现出强烈的共价和部分键,包括共价和静电相互作用。相反,BNP-2中的H─N键表现出较弱的氢键。通过非共价相互作用(NCI)和降低密度梯度(RDG)分析的进一步研究表明,在BNP-1和BNP-3中存在强相互作用,而在BNP-2中存在弱相互作用。电子带隙(Eg)的减小表明了B12N12作为扑热息痛吸附剂的潜力。通过热力学分析,∆H(焓变)和∆G(吉布斯自由能变化)的负值表明吸附过程是放热自发的。总之,我们的研究强调了B12N12作为去除废水中扑热息痛的有效吸附剂的潜力。
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来源期刊
Computation
Computation Mathematics-Applied Mathematics
CiteScore
3.50
自引率
4.50%
发文量
201
审稿时长
8 weeks
期刊介绍: Computation a journal of computational science and engineering. Topics: computational biology, including, but not limited to: bioinformatics mathematical modeling, simulation and prediction of nucleic acid (DNA/RNA) and protein sequences, structure and functions mathematical modeling of pathways and genetic interactions neuroscience computation including neural modeling, brain theory and neural networks computational chemistry, including, but not limited to: new theories and methodology including their applications in molecular dynamics computation of electronic structure density functional theory designing and characterization of materials with computation method computation in engineering, including, but not limited to: new theories, methodology and the application of computational fluid dynamics (CFD) optimisation techniques and/or application of optimisation to multidisciplinary systems system identification and reduced order modelling of engineering systems parallel algorithms and high performance computing in engineering.
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