Shakoor Muhammad Bilal, Ye Zhi-Long, Chen Shaohua
Key Laboratory of Urban Pollutant Conversion, Institute of Urban Environment, Chinese Academy of Sciences, No. 1799 Jimei Road, Xiamen City, Fujian 361021, China.
Key Laboratory of Urban Pollutant Conversion, Institute of Urban Environment, Chinese Academy of Sciences, No. 1799 Jimei Road, Xiamen City, Fujian 361021, China.
Sci Total Environ. 2021 Jul 20;779:146240. doi: 10.1016/j.scitotenv.2021.146240. Epub 2021 Mar 6.
Biochar has gained great scientific attention as a promising agent for agricultural and environmental applications. A variety of biochars with excellent properties such as high porosity, surface area and functional groups have been developed for nutrients recovery from wastewater. Compared to pristine biochar, engineered biochar with enlarged surface area and abundant functional groups has been prepared which shows a new type of carbon-based material with enhanced adsorption potential for nutrients in wastewater. To date, a few reviews have been specifically focused on several important aspects of engineered biochar, such as its application to recover phosphate and ammonium from wastewater and subsequent use as a slow-release fertilizer. In this work, novel modification/treatment methods including activation with acid/alkali, functionalization with amides, thiols and oxidizing agents, metal salt impregnation, loading with various minerals and carbon-based materials are reviewed for preparing engineered biochar with improved adsorption capacity. Various sources of biomass for producing biochars were estimated, and the intrinsic characteristics and potential of biochar products for simultaneous recovery/removal of phosphate and ammonium from wastewater were evaluated. Relevant interaction mechanisms of phosphate and ammonium adsorption on engineered biochars have been discussed in details. Finally, important future prospects as well as industrial/commercial-scale application of engineered biochars for phosphate and ammonium recovery from wastewater have been emphasized. We believe that this review will provide broad scientific opportunities for thorough understanding of applying engineered biochar as a low-cost and environmentally sustainable material for nutrients recovery from wastewater.
生物炭作为一种在农业和环境应用中颇具前景的物质,已引起了科学界的广泛关注。人们开发了多种具有高孔隙率、高表面积和官能团等优异特性的生物炭,用于从废水中回收养分。与原始生物炭相比,已制备出具有更大表面积和丰富官能团的工程生物炭,它是一种新型的碳基材料,对废水中的养分具有更强的吸附潜力。迄今为止,已有一些综述专门聚焦于工程生物炭的几个重要方面,例如其在从废水中回收磷酸盐和铵以及随后用作缓释肥料方面的应用。在这项工作中,综述了包括酸碱活化、酰胺、硫醇和氧化剂官能化、金属盐浸渍、负载各种矿物质和碳基材料等新型改性/处理方法,以制备具有更高吸附容量的工程生物炭。评估了用于生产生物炭的各种生物质来源,以及生物炭产品同时从废水中回收/去除磷酸盐和铵的内在特性和潜力。详细讨论了磷酸盐和铵在工程生物炭上吸附的相关相互作用机制。最后,强调了工程生物炭在从废水中回收磷酸盐和铵方面重要的未来前景以及工业/商业规模应用。我们相信,这篇综述将为全面理解将工程生物炭作为一种低成本且环境可持续的材料用于从废水中回收养分提供广阔的科学契机。