首页> 外文期刊>International Journal of Biological Macromolecules: Structure, Function and Interactions >Comparison of magnetic Fe3O4/chitosan and arginine-modified magnetic Fe3O4/chitosan nanoparticles in simultaneous multidye removal: Experimental design and multicomponent analysis
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Comparison of magnetic Fe3O4/chitosan and arginine-modified magnetic Fe3O4/chitosan nanoparticles in simultaneous multidye removal: Experimental design and multicomponent analysis

机译:磁Fe3O4 /壳聚糖和精氨酸改性磁Fe3O4 /壳聚糖纳米粒子同时去除磁性Fe3O4 /壳聚糖和壳聚糖纳米粒子的比较:实验设计和多组分分析

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In this study, multidye biosorption of Titan yellow (TY), Fuchsine acid (FA) and Indigo carmine (IC) in ternary mixture onto magnetic Fe3O4/chitosan nanoparticles (MFe3O4/CS NPs) and arginine-modified MFe3O4/CS NPs was investigated. Simultaneous determination of TY, IC, and FA in ternary solutions was performed by principal component -wavelet neural network (PC-WNN). Characterizations of the synthesized particles were performed by scanning electron microscopy (SEM), elemental analysis (EDAX), thermo-gravimetric analysis (TGA), vibrating sample magnetometer (VSM), Fourier transform infrared (FT-IR) spectroscopy and BET surface area analysis. Result VSM indicate the saturation magnetization values of bare Fe3O4 and arginine-modified magnetic chitosan nanoparticles were about 55.00, 23.04 emu/g, respectively. Also result of BET analysis showed chitosan, MFe3O4/ CSNPs,and arginine-modified are nonporous and specific surface area for arginine-modified is more than chitosan, MFe3O4/CSNPs. Response surface methodology (RSM) with Box-Behnken design was used to optimize experimental parameters (biosorbent dose, pH, and time). At optimum conditions, maximum total biosorption capacity of MFe3O4/CSNPs and arginine-modified MFe3O4/CSNPs for anionic dyes was 0.385 and 0.681 mmol, respectively. Arginine-modified magnetic Fe3O4/CSNPs biosorption capacity was twice better than that of magnetic Fe3O4/CSNPs. The biosorption processes were kinetically followed by a pseudo-second order model. Fourteen isotherms were also fitted to biosorption equilibrium data. (C) 2018 Published by Elsevier B.V.
机译:在该研究中,研究了三氮(TY),葡萄氨酸(TY),葡萄氨酸(FA)和ICIGO Carmine(IC)在磁FE3O4 /壳聚糖纳米粒子(MFE3O4 / CS NPS)和精氨酸改性的MFE3O4 / CS NPS上的钛黄(TY),葡萄氨酸(FA)和靛蓝胭脂红(IC)。通过主成分 - 小波神经网络(PC-Wnn)进行三元溶液中TY,IC和FA的同时确定。通过扫描电子显微镜(SEM),元素分析(edax),振动样品磁力计(VSM),傅里叶变换红外(FT-IR)光谱和BET表面积分析来进行合成颗粒的特征。结果VSM表示裸FE3O4和精氨酸改性的磁性壳聚糖纳米粒子的饱和磁化值分别为约55.00,23.04 emu / g。 BET分析的结果显示壳聚糖,MFE3O4 / CSNP和精氨酸改性的是精氨酸改性的无孔和比表面积大于壳聚糖,MFE3O4 / CSNP。用Box-Behnken设计的响应表面方法(RSM)用于优化实验参数(生物吸附剂量,pH和时间)。在最佳条件下,用于阴离子染料的最大MFE3O4 / CSNP和精氨酸改性的MFE3O4 / CSNP的总生物吸收容量分别为0.385和0.681mmol。精氨酸改性的磁Fe3O4 / CSNPS生物吸收容量比磁FE3O4 / CSNPS的两倍。生物吸附过程是动力学上的,然后是伪二阶模型。十四等温机也适用于生物吸附平衡数据。 (c)2018由elestvier b.v出版。

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