EFFECTIVE ADSORPTION OF TETRACYCLINE WITH Co3O4/Fe3O4 BIMETALLIC NANOPARTICLES

M. Ergüt, M. Musa, Hozaifa Hasan, Hülya Malkoç, Deniz Uzunoğlu, A. Özer
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Abstract

In the present study cobalt oxide/iron oxide bimetallic nanoparticles (Co 3 O 4 /Fe 3 O 4 NPs) were synthesized by chemical coprecipitation method. The synthesized Co 3 O 4 /Fe 3 O 4 NPs were characterized by SEM and XRD analysis. The synthesized nanoparticles were used as an adsorbent for the removal of a kind of antibiotic as Tetracycline (TC) from aqueous solutions. According to characterization results, small plate-like structures and agglomerated irregular spherical nanosized particles (101.85 ± 15.04 nm) were formed. The XRD data confirmed the structure of synthesized adsorbent was Co 3 O 4 /Fe 3 O 4 . The optimum tetracycline adsorption conditions were determined as the initial pH of solution 9.0, temperature 55°C, and adsorbent concentration 3.0 g/L. A linear increase was observed in equilibrium uptakes of TC with the increasing the initial antibiotic concentrations. The experimental equilibrium data was modelled with Langmuir and Freundlich isotherm models. The experimental equilibrium data was the best agreement to the Langmuir isotherm model. The maximum monolayer coverage capacity of Co 3 O 4 /Fe 3 O 4 NPs for TC adsorption was found to be 149.26 mg/g at 55°C optimum temperature. The experimental kinetic adsorption data were defined as the best agreement with the pseudo-second-order kinetic model. Weber Morris mass transfer modelling results showed that both the film (boundary layer) and intra-particle diffusion were effective in the adsorption process. The thermodynamic studies suggested that the adsorption process was endothermic, spontaneous and the positive ΔS value indicated increased disorder at the solid-solution interface during the adsorption. Moreover, the synthesized adsorbent showed high adsorption efficiencies at the end of seven sequence usages.
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Co3O4/Fe3O4双金属纳米颗粒对四环素的有效吸附
本文采用化学共沉淀法合成了氧化钴/氧化铁双金属纳米粒子(co3o4 / fe3o4 NPs)。用SEM和XRD对合成的co3o4 / fe3o4纳米粒子进行了表征。将合成的纳米颗粒作为吸附剂用于去除水中的四环素等抗生素。表征结果显示,形成了小片状结构和不规则球形纳米颗粒(101.85±15.04 nm)。XRD数据证实合成的吸附剂结构为co3o4 / fe3o4。最佳吸附条件为溶液初始pH 9.0,温度55℃,吸附剂浓度3.0 g/L。随着初始抗生素浓度的增加,平衡吸收TC呈线性增加。实验平衡数据采用Langmuir和Freundlich等温线模型。实验平衡数据与Langmuir等温线模型最吻合。在55℃的最佳温度下,co3o4 / fe3o4 NPs对TC吸附的最大单层覆盖容量为149.26 mg/g。实验动力学吸附数据与拟二级动力学模型最吻合。Weber Morris传质模拟结果表明,膜(边界层)和颗粒内扩散在吸附过程中都是有效的。热力学研究表明,吸附过程是吸热自发的,ΔS值为正表明吸附过程中固液界面的无序性增加。此外,合成的吸附剂在7次顺序使用结束时表现出较高的吸附效率。
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