School of Biotechnology, Badr University in Cairo (BUC), Badr City, Cairo 11829, Egypt.
Chemistry Department, College of Science, King Khalid University, Abha 61413, Saudi Arabia.
Int J Biol Macromol. 2024 Aug;274(Pt 2):133498. doi: 10.1016/j.ijbiomac.2024.133498. Epub 2024 Jun 27.
This study explores the effectiveness of Alginate-coated nano‑iron oxide combined with copper-based MOFs (Cu-BTC@Alg/FeO) composites for the sustainable and efficient removal of Rhodamine B (RhB) dye from wastewater through adsorption and photocatalysis. Utilizing various characterization techniques such as FTIR, XRD, SEM, and TEM, we confirmed the optimal synthesis of this composite. The composites exhibit a significant surface area of approximately 160 m g, as revealed by BET analysis, resulting in an impressive adsorption capacity of 200 mg g and a removal efficiency of 97 %. Moreover, their photocatalytic activity is highly effective, producing environmentally friendly degradation byproducts, thus underlining the sustainability of Cu-BTC@Alg/FeO composites in dye removal applications. Our investigation delves into kinetics and thermodynamics, revealing a complex adsorption mechanism influenced by both chemisorption and physisorption. Notably, the adsorption kinetics indicate equilibrium attainment within 100 min across all initial concentrations, with the pseudo-second-order kinetic model fitting the data best (R ≈ 0.999). Furthermore, adsorption isotherm models, including Langmuir, Freundlich, Temkin, and Dubinin-Radushkevich, elucidate the adsorption behavior, with the Temkin and Dubinin-Radushkevich models showing superior accuracy compared to the Langmuir model (R ≈ 0.98 and R ≈ 0.96, respectively). Additionally, thermodynamic analysis reveals a negative Gibbs free energy value (-6.40 kJ mol), indicating the spontaneity of the adsorption process, along with positive enthalpy (+24.3 kJ mol) and entropy (+82.06 kJ mol K) values, suggesting an endothermic and disorderly process at the interface. Our comprehensive investigation provides insights into the optimal conditions for RhB adsorption onto Cu-BTC@Alg/FeO composites, highlighting their potential in wastewater treatment applications.
本研究探索了 Alginate 包覆的纳米氧化铁与铜基金属有机框架(Cu-BTC@Alg/FeO)复合材料结合,通过吸附和光催化,从废水中可持续且高效地去除 Rhodamine B(RhB)染料的效果。利用 FTIR、XRD、SEM 和 TEM 等多种表征技术,我们确认了该复合材料的最佳合成。BET 分析表明,该复合材料的比表面积约为 160 m g,吸附容量高达 200 mg g,去除效率达 97%。此外,其光催化活性非常高,产生环保的降解副产物,突出了 Cu-BTC@Alg/FeO 复合材料在染料去除应用中的可持续性。我们的研究深入探讨了动力学和热力学,揭示了一种受化学吸附和物理吸附影响的复杂吸附机制。值得注意的是,吸附动力学表明,在所有初始浓度下,平衡在 100 min 内达到,伪二阶动力学模型最适合拟合数据(R≈0.999)。此外,Langmuir、Freundlich、Temkin 和 Dubinin-Radushkevich 吸附等温线模型阐明了吸附行为,其中 Temkin 和 Dubinin-Radushkevich 模型比 Langmuir 模型更准确(R≈0.98 和 R≈0.96)。此外,热力学分析表明,Gibbs 自由能值为负(-6.40 kJ mol),表明吸附过程的自发性,同时焓(+24.3 kJ mol)和熵(+82.06 kJ mol K)值为正,表明界面处的吸热和无序过程。我们的综合研究为 RhB 在 Cu-BTC@Alg/FeO 复合材料上吸附的最佳条件提供了深入了解,突出了它们在废水处理应用中的潜力。