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首页> 外文期刊>ACS Omega >Arsenic(III) Removal by Nanostructured Dialdehyde Cellulose–Cysteine Microscale and Nanoscale Fibers
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Arsenic(III) Removal by Nanostructured Dialdehyde Cellulose–Cysteine Microscale and Nanoscale Fibers

机译:纳米结构二醛纤维素-半胱氨酸微米级和纳米级纤维去除砷(III)

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Arsenite (As(III)) contamination in drinking water has become a worldwide problem in recent years, which leads to development of various As(III) remediation approaches. In this study, two biomass-based nanostructured materials, microscale dialdehyde cellulose–cysteine (MDAC–cys) and nanoscale dialdehyde cellulose–cysteine (NDAC–cys) fibers, have been prepared from wood pulp. Their As(III) removal efficiencies and mechanism were determined by combined adsorption, atomic fluorescence spectrometry, microscopy (scanning electron microscopy, transmission electron microscopy, and atomic force microscopy), and spectroscopy (Fourier transform infrared, 13C CPMAS NMR) methods. The adsorption results of these materials could be well described by the Freundlich isotherm model, where the maximum adsorption capacities estimated by the Langmuir isotherm model were 344.82 mg/g for MDAC–cys and 357.14 mg/g for NDAC–cys, respectively. Both MDAC–cys and NDAC–cys materials were further characterized by X-ray diffraction and thermogravimetric analysis, where the results indicated that the thiol groups (the S content in MDAC–cys was 12.70 and NDAC–cys was 17.15%) on cysteine were primarily responsible for the adsorption process. The nanostructured MDAC–cys system appeared to be more suitable for practical applications because of its high cost-effectiveness.
机译:近年来,饮用水中的砷(As(III))污染已成为世界性问题,这导致了各种As(III)修复方法的发展。在这项研究中,已经从木浆中制备了两种基于生物质的纳米结构材料,即微型二醛纤维素半胱氨酸(MDAC-cys)和纳米二醛纤维素半胱氨酸(NDAC-cys)纤维。通过联合吸附,原子荧光光谱,显微镜(扫描电子显微镜,透射电子显微镜和原子力显微镜)和光谱(傅里叶变换红外,13C CPMAS NMR)方法确定了它们的As(III)去除效率和机理。这些材料的吸附结果可以用Freundlich等温线模型很好地描述,其中Langmuir等温线模型估计的最大吸附容量对MDAC-cys为344.82 mg / g,对NDAC-cys为35​​7.14 mg / g。通过X射线衍射和热重分析进一步对MDAC-cys和NDAC-cys材料进行了表征,结果表明半胱氨酸上的硫醇基(MDAC-cys中的S含量为12.70,NDAC-cys为17.15%)。主要负责吸附过程。纳米结构的MDAC-cys系统因其高成本效益而显得更适合实际应用。

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