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Diverse Surface Chemistry of Cobalt Ferrite Nanoparticles to Optimize Copper(II) Removal from Aqueous Media

机译:钴铁氧体纳米粒子的不同表面化学以优化从水性介质中去除铜(II)

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摘要

Water pollution by heavy metals is one of the most serious worldwide environmental issues. With a focus on copper(II) ions and copper complex removal, in the present study, ultra-small primary CoFe O magnetic nanoparticles (MNPs) coated with octadecylamine (ODA) of adequate magnetization were solvothermally prepared. The surface modification of the initial MNPs was adapted via three different chemical approaches based on amine and/or carboxylate functional groups: (i) the deposition of polyethylimide (PEI), (ii) covalent binding with diethylenetriaminepentaacetic acid (DTPA), and (iii) conjugation with both PEI and DTPA, respectively. FT-IR, TGA, and DLS measurements confirmed that PEI or/and DTPA were successfully functionalized. The percentage of the free amine (−NH ) groups was also estimated. Increased magnetization values were found in case of PEI and DTPA-modified MNPs that stemmed from the adsorbed amine or oxygen ligands. Comparative UV–Vis studies for copper(II) ion removal from aqueous solutions were conducted, and the effect of time on the adsorption capacity was analyzed. The PEI-modified particles exhibited the highest adsorption capacity (164.2 mg/g) for copper(II) ions and followed the pseudo-second-order kinetics, while the polynuclear copper(II) complex Cu (DTPA) was also able to be immobilized. The nanoadsorbents were quickly isolated from the solution by magnetic separation and regenerated easily by acidic treatment.
机译:重金属对水的污染是全球最严重的环境问题之一。着眼于铜离子和铜络合物的去除,在本研究中,用溶剂热法制备了涂覆有足够磁化强度的十八烷基胺(ODA)的超小型初级CoFe O磁性纳米粒子(MNP)。通过基于胺和/或羧酸酯官能团的三种不同化学方法,对初始MNP的表面改性进行了调整:(i)聚酰亚胺(PEI)的沉积,(ii)与二亚乙基三胺五乙酸(DTPA)的共价结合,和(iii )分别与PEI和DTPA结合。 FT-IR,TGA和DLS测量证实PEI或/和DTPA已成功功能化。还估计了游离胺(-NH)基团的百分比。在PEI和DTPA修饰的MNP源自吸附的胺或氧配体的情况下,发现磁化值增加。进行了UV-Vis比较研究,以从水溶液中去除铜(II)离子,并分析了时间对吸附容量的影响。 PEI改性的颗粒对铜(II)离子具有最高的吸附容量(164.2 mg / g),并遵循拟二级动力学,而多核铜(II)配合物Cu(DTPA)也可以固定。通过磁性分离从溶液中快速分离出纳米吸附剂,并通过酸性处理容易地再生。

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