Amoxicillin adsorption from aqueous solution by magnetite iron nanoparticles: molecular modelling and simulation

IF 0.9 Q4 ENGINEERING, CHEMICAL Indian Chemical Engineer Pub Date : 2023-08-02 DOI:10.1080/00194506.2023.2234908
Shabnam Ahmadi, Soumya Ghosh, Alhadji Malloum, Mika Sillanpää, Chinenye Adaobi Igwegbe, Prosper E. Ovuoraye, Joshua O. Ighalo
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引用次数: 2

Abstract

ABSTRACTMolecular modelling and simulation were used to examine the efficacy of iron nanoparticles (Fe3O4–NPs) in removing amoxicillin (AMX) from aqueous media and determine the optimal conditions. Fe3O4–NPs were initially ascertained using scanning electron microscopy, and Fourier transform infrared spectroscopy. The molecular optimisation modelling via DFT confirmed AMX molecule has chemical potential (–3.59), and electrophilicity index (2.14). The results established that a small chemical hardness = 3.0 eV and molecular energy gap of 6.01 eV, which makes it reactive. The molecule of the antibiotics could interact and be absorbed by the lactase enzyme. The parameters: pH (3–7), time (15–80 min), Fe3O4–NPs dosage (0.1–1.0 g/L), and antibiotic concentration (10–100 mg/L) were studied. The impact of optimum variables pH3, and dosage (0.5 g/L) for adsorption of AMX molecules onto coated Fe3O4–NPs translated to 98% efficiency at 60 mg/l of AMX and 60 min. The adsorption data fitted the Langmuir (R2: 0.9245) with minimal error metrics RMSE ≤ 1.2 when compared to the Freundlich isotherm R2 (0.88) and intraparticle diffusion model R2 (0.58). The maximum adsorption capacity of AMX to Fe3O4–NPs corresponds to 6.47 mg/g with a corresponding adsorption constant of 2.8. Furthermore, AMX adsorption onto Fe3O4–NPs followed pseudo-second-order at R2 (0.9999), with an adsorption constant (k = 3.6 × 10−2g/mg.min).KEYWORDS: Molecular modellingamoxicillinadsorptionnanoparticleskinetics Data availability statementNo data were used to support this study. All data generated or analyzed during this study are included in this article.Disclosure statementNo potential conflict of interest was reported by the author(s).
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磁铁矿纳米颗粒吸附水溶液中的阿莫西林:分子模型和模拟
摘要采用分子模拟方法考察了铁纳米颗粒(Fe3O4-NPs)去除水中阿莫西林(AMX)的效果,并确定了最佳去除条件。利用扫描电镜和傅里叶变换红外光谱初步确定了Fe3O4-NPs。DFT分子优化模型证实AMX分子具有化学势(-3.59)和亲电指数(2.14)。结果表明,该材料具有较小的化学硬度(3.0 eV)和分子能隙(6.01 eV),具有良好的反应性。抗生素分子可以相互作用并被乳糖酶吸收。研究了pH(3 ~ 7)、时间(15 ~ 80 min)、Fe3O4-NPs用量(0.1 ~ 1.0 g/L)、抗生素浓度(10 ~ 100 mg/L)。当AMX浓度为60 mg/ L,时间为60 min时,最佳变量pH3和用量(0.5 g/L)对AMX分子在Fe3O4-NPs表面的吸附效率为98%。与Freundlich等温线R2(0.88)和颗粒内扩散模型R2(0.58)相比,Langmuir (R2: 0.9245)的最小误差指标RMSE≤1.2。AMX对Fe3O4-NPs的最大吸附量为6.47 mg/g,对应的吸附常数为2.8。此外,AMX在Fe3O4-NPs上的吸附在R2(0.9999)处为准二阶,吸附常数k = 3.6 × 10−2g/mg.min。关键词:分子模拟;阿莫西林;吸附;纳米颗粒;本研究过程中产生或分析的所有数据均包含在本文中。披露声明作者未报告潜在的利益冲突。
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来源期刊
Indian Chemical Engineer
Indian Chemical Engineer ENGINEERING, CHEMICAL-
CiteScore
3.00
自引率
6.70%
发文量
33
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