Han Meiyao, Liu Ziyang, Huang Shiyue, Zhang Huanxing, Yang Huilin, Liu Yuan, Zhang Ke, Zeng Yusheng
College of Civil Engineering, Sichuan Agricultural University, Dujiangyan 611830, China.
Luoyang Petrochemical Engineering Design Co., Ltd., Luoyang 471003, China.
Nanomaterials (Basel). 2024 Nov 30;14(23):1933. doi: 10.3390/nano14231933.
With the growth of the global population and the acceleration of industrialization, the problem of water pollution has become increasingly serious, posing a major threat to the ecosystem and human health. Traditional water treatment technologies make it difficult to cope with complex pollution, so the scientific community is actively exploring new and efficient treatment methods. Biochar (BC), as a low-cost, green carbon-based material, exhibits good adsorption and catalytic properties in water treatment due to its porous structure and abundant active functional groups. However, BC's pure adsorption or catalytic capacity is limited, and researchers have dramatically enhanced its performance through modification means, such as loading metals or heteroatoms. In this paper, we systematically review the recent applications of BC and its modified materials for water treatment in adsorption, Fenton-like, electrocatalytic, photocatalytic, and sonocatalytic systems, and discuss their adsorption/catalytic mechanisms. However, most of the research in this field is at the laboratory simulation stage and still needs much improvement before it can be applied in large-scale wastewater treatment. This review improves the understanding of the pollutant adsorption/catalytic properties and mechanisms of BC-based materials, analyzes the limitations of the current studies, and investigates future directions.
随着全球人口的增长和工业化进程的加速,水污染问题日益严重,对生态系统和人类健康构成了重大威胁。传统的水处理技术难以应对复杂的污染,因此科学界正在积极探索新的高效处理方法。生物炭(BC)作为一种低成本的绿色碳基材料,因其多孔结构和丰富的活性官能团,在水处理中表现出良好的吸附和催化性能。然而,BC的纯吸附或催化能力有限,研究人员通过负载金属或杂原子等改性手段显著提高了其性能。本文系统综述了BC及其改性材料近年来在吸附、类芬顿、电催化、光催化和声催化体系中用于水处理的应用,并讨论了它们的吸附/催化机理。然而,该领域的大部分研究仍处于实验室模拟阶段,在应用于大规模废水处理之前仍需大量改进。本综述增进了对基于BC材料的污染物吸附/催化性能及机理的理解,分析了当前研究的局限性,并探讨了未来的发展方向。