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废水生物吸附剂、纳米颗粒和磁性生物吸附剂中污染物的吸附:综述。

Adsorption of pollutants in wastewater via biosorbents, nanoparticles and magnetic biosorbents: A review.

机构信息

School of Energy and Chemical Engineering, Xiamen University Malaysia, Selangor Darul Ehsan, 43900, Malaysia.

School of Energy and Chemical Engineering, Xiamen University Malaysia, Selangor Darul Ehsan, 43900, Malaysia; College of Chemistry and Chemical Engineering, Xiamen University, Xiamen, 361005, Fujian, China.

出版信息

Environ Res. 2022 Sep;212(Pt B):113248. doi: 10.1016/j.envres.2022.113248. Epub 2022 Apr 9.

Abstract

Adsorption has gained much attention as one of the efficient approaches to remediate the contaminants in wastewater. Herein, this critical review focuses on the preparation, modification, application and regeneration of the biosorbents, nanoparticles and magnetic biosorbents for the wastewater treatment in recent 5 years (2017-2021). Among these materials, the development of magnetic biosorbents is attractive owing to their variable active sites, high specific surface area, easy separation and low cost. To improve the adsorption performance of biosorbents, the chemical activations such as acid, alkali and salt activations of biosorbents are discussed. In general, the oxidation reaction in acid, alkali and salt activations increases the porosity of biosorbents. The surface characteristics, surface chemistry of the biosorbents and magnetic biosorbents such as electrostatic interaction, π-π interaction and hydrogen bonding are highlighted. Ionic compounds are separated through ion exchange, surface charge and electrostatic interactions while the organic pollutants are removed via hydrophobicity, π-π interactions and hydrogen bonding. The effect of solution pH, adsorbent dosage, initial concentration of pollutants, adsorption duration and temperature on the adsorption capacity, and removal efficiency are discussed. Generally, an increase in adsorbent dosage resulted in a decrease in adsorption capacity due to the excessive active sites. On the other hand, a higher initial concentration or an increase in contact time of adsorbent increased the driving force, subsequently enhancing the adsorption capacity. Finally, this review will be concluded with a summary, challenges and future outlook of magnetic biosorbents. It is anticipated that this review will provide insights into engineering advanced and suitable materials to achieve cost-effective and scalable adsorbents for practical and sustainable environmental remediation.

摘要

吸附作为一种有效去除废水中污染物的方法受到了广泛关注。本文主要综述了近 5 年来(2017-2021 年)用于废水处理的生物吸附剂、纳米颗粒和磁性生物吸附剂的制备、改性、应用和再生。在这些材料中,由于具有可变的活性位点、高比表面积、易于分离和低成本等特点,磁性生物吸附剂的发展引人注目。为了提高生物吸附剂的吸附性能,讨论了生物吸附剂的化学活化,如酸、碱和盐的活化。一般来说,酸、碱和盐的活化中的氧化反应增加了生物吸附剂的孔隙率。强调了生物吸附剂和磁性生物吸附剂的表面特性和表面化学,如静电相互作用、π-π 相互作用和氢键。离子化合物通过离子交换、表面电荷和静电相互作用分离,而有机污染物则通过疏水性、π-π 相互作用和氢键去除。讨论了溶液 pH 值、吸附剂用量、污染物初始浓度、吸附时间和温度对吸附容量和去除效率的影响。一般来说,由于过多的活性位点,增加吸附剂用量会导致吸附容量降低。另一方面,较高的初始浓度或增加吸附剂的接触时间会增加驱动力,从而提高吸附容量。最后,本文将对磁性生物吸附剂进行总结、挑战和展望。期望本综述能为开发先进、合适的材料提供一些见解,以实现具有成本效益和可扩展的吸附剂,用于实际和可持续的环境修复。

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