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新型分级微/纳米结构AlOOH/AlFe的合成及其在去除As(V)中的应用。

Synthesis of novel hierarchical micro/nanostructures AlOOH/AlFe and their application for As(V) removal.

作者信息

Svarovskaya Natalia, Bakina Olga, Glazkova Elena, Rodkevich Nikolay, Lerner Marat, Vornakova Ekaterina, Chzhou Valeria, Naumova Liudmila

机构信息

Institute of Strength Physics and Materials Science of Siberian Branch Russian Academy of Sciences (ISPMS SB RAS), 8/2 Akademicheskii pr, Tomsk, 634050, Russia.

National Research Tomsk State University, 36 Lenin Ave, Tomsk, 634050, Russia.

出版信息

Environ Sci Pollut Res Int. 2022 Jan;29(1):1246-1258. doi: 10.1007/s11356-021-15612-9. Epub 2021 Aug 5.

Abstract

Hierarchical micro/nanostructured composites, which contain iron and/or its (hydr)oxides, demonstrate high rate and capacity of arsenic adsorption. The main objective of this paper is the use of novel low toxicity AlOOH/AlFe hierarchical micro/nanostructures for arsenic removal. AlOOH/AlFe composite was obtained by simple water oxidation in mild conditions using AlFe bimetallic nanopowder as a precursor. AlFe bimetallic nanopowder was produced by electrical explosive of two twisted wires in argon atmosphere. The productivity of the electrical explosion assembly was 50 g/h, with the consumption of the electrical energy was 75 kW·h/kg. AlFe bimetallic nanoparticles were chemically active and interacted with water at 60 °C. This nanocomposite AlOOH/AlFe is low cost and adsorbs more than 200 mg/g As(V) from its aqueous solution. AlOOH/AlFe composite has flower-like morphology and specific surface area 247.1 m/g. The phase composition of nanostructures is present AlOOH boehmite and AlFe intermetallic compound. AlOOH/AlFe composite was not previously used for this. The flower-shape AlOOH morphology not only facilitated deliverability, but increased the As(V) sorption capacity by up to 200 mg/g. The adsorption kinetics has been found to be described by a pseudo-second-order equation of Lagergren and Weber-Morris models while the experimental adsorption isotherm is closest to the Freundlich model. This indicates the energy heterogeneity of the adsorbent surface and multilayer adsorption. The use of non-toxic nanostructures opens up new options to treat water affected by arsenic pollution.

摘要

含有铁和/或其(氢)氧化物的分级微/纳米结构复合材料表现出高的砷吸附速率和容量。本文的主要目的是使用新型低毒的AlOOH/AlFe分级微/纳米结构去除砷。以AlFe双金属纳米粉末为前驱体,通过在温和条件下简单的水氧化反应制备了AlOOH/AlFe复合材料。AlFe双金属纳米粉末是通过在氩气气氛中对两根绞合线进行电爆炸制备的。电爆炸装置的生产率为50 g/h,电能消耗为75 kW·h/kg。AlFe双金属纳米颗粒具有化学活性,在60℃下与水发生相互作用。这种纳米复合材料AlOOH/AlFe成本低,能从其水溶液中吸附超过200 mg/g的As(V)。AlOOH/AlFe复合材料具有花状形态,比表面积为247.1 m/g。纳米结构的相组成包括勃姆石AlOOH和AlFe金属间化合物。AlOOH/AlFe复合材料以前未用于此目的。花状AlOOH形态不仅便于输送,而且使As(V)吸附容量提高到200 mg/g。吸附动力学已被发现可用Lagergren和Weber-Morris模型的伪二级方程描述,而实验吸附等温线最接近Freundlich模型。这表明吸附剂表面的能量不均匀性和多层吸附。使用无毒纳米结构为处理受砷污染的水开辟了新的选择。

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