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共热解生物炭在污染环境基质中对重金属的吸附和固定中的应用。

Application of co-pyrolysis biochar for the adsorption and immobilization of heavy metals in contaminated environmental substrates.

作者信息

Li Yuanling, Yu Han, Liu Lina, Yu Hongbing

机构信息

MOE Key Laboratory of Pollution Processes and Environmental Criteria, Tianjin Engineering Centre for Cleaner Technology of Iron-steel Industry, College of Environmental Science and Engineering, Nankai University, 38 Tongyan Road, Jinnan District, Tianjin 300350, China.

MOE Key Laboratory of Pollution Processes and Environmental Criteria, Tianjin Engineering Centre for Cleaner Technology of Iron-steel Industry, College of Environmental Science and Engineering, Nankai University, 38 Tongyan Road, Jinnan District, Tianjin 300350, China.

出版信息

J Hazard Mater. 2021 Oct 15;420:126655. doi: 10.1016/j.jhazmat.2021.126655. Epub 2021 Jul 16.

Abstract

Heavy metal pollution has been considered as a serious threat to the environment and human in the past decades due to its toxic and unbiodegradable properties. Recently, extensive studies have been carried out on the removal of heavy metals, and various adsorption materials have been successfully developed. Among, biochar is a promising option because of its advantages of various biomass sources, abundant microporous channels and surface functional groups, as well as its attractive economic feasibility. However, the application of pristine biochar is limited by its low adsorption capacity and nonregenerative property. Co-pyrolysis biochar, produced from the pyrolysis of biomass with the addition of another biomass or non-biomass precursor, is potential in overcoming the limitation of pristine biochar and achieving superior performance for heavy metal adsorption and immobilization. Therefore, this article summarizes the recent advances in development and applications of co-pyrolysis biochar for adsorption and immobilization of various heavy metals in contaminated environmental substrates. In details, the production, characteristics and advantages of co-pyrolysis biochar are initially presented. Subsequently, the adsorption behaviors and mechanisms of different heavy metals (including Hg, Zn, Pb, Cu, Cd, Cr, As, etc.) in flue gas and wastewater by co-pyrolysis biochar are reviewed, as well as factors influencing their adsorption capacities. Meanwhile, the immobilization of heavy metals in both biochar itself and contaminated soils by co-pyrolysis biochar is discussed. Finally, the limitations of current studies and future prospects are proposed. It aims at providing a guideline for the exploitation and application of cost-effective and environmental-friendly co-pyrolysis biochar in the decontamination of environmental substrates.

摘要

在过去几十年里,重金属污染因其毒性和不可生物降解性,一直被视为对环境和人类的严重威胁。近年来,人们对重金属去除进行了广泛研究,并成功开发出了各种吸附材料。其中,生物炭是一个很有前景的选择,因为它具有生物质来源多样、微孔通道丰富、表面官能团众多等优点,以及吸引人的经济可行性。然而,原始生物炭的应用受到其低吸附容量和不可再生特性的限制。共热解生物炭是通过生物质与另一种生物质或非生物质前驱体一起热解产生的,在克服原始生物炭的局限性以及实现重金属吸附和固定的卓越性能方面具有潜力。因此,本文总结了共热解生物炭在受污染环境基质中吸附和固定各种重金属的开发与应用的最新进展。详细地说,首先介绍了共热解生物炭的生产、特性和优点。随后,综述了共热解生物炭对烟气和废水中不同重金属(包括汞、锌、铅、铜、镉、铬、砷等)的吸附行为和机制,以及影响其吸附容量的因素。同时,讨论了共热解生物炭对生物炭自身和受污染土壤中重金属的固定作用。最后,提出了当前研究的局限性和未来前景。其目的是为经济高效且环境友好的共热解生物炭在环境基质去污中的开发和应用提供指导。

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