Zhang Canyu, Pan Rongjie, Wang Haijian, Liu Yuelong, Bai Rui, Zhang Haorang, Zhang Yicheng, Hu Guangzhi, Zhou Yingtang, Zhao Xue
Faculty of Chemistry and Chemical Engineering, Yunnan Normal University, Kunming 650092, China.
National Engineering Research Center for Marine Aquaculture, Marine Science and Technology College, Zhejiang Ocean University, Zhoushan 316004, China.
J Colloid Interface Sci. 2024 Sep 15;670:50-60. doi: 10.1016/j.jcis.2024.05.051. Epub 2024 May 10.
The advanced oxidation process (AOPs) is playing an important role in the elimination of hazardous organic pollutants, but the development of inexpensive and highly active advanced catalysts is facing challenges. In this study, a low-cost and readily available agricultural waste resource pomelo peel-flesh (PPF) biomass was used as the basic raw material, and the uniformly dispersed small cobalt nanoparticles were effectively anchored in the biochar derived from pomelo peel-flesh (BDPPF) by impregnation adsorption/complexation combined with heat treatment. Co/BDPPF (BDPPF embedded with Co) can effectively activate peroxymonosulfate (PMS) to SO, ·OH and O reactive oxygen species, and achieve nearly 100% degradation of tetracycline persistent organic pollutant. Co/BDPPF can not only degrade tetracycline efficiently in complex water environment, but also degrade most organic pollutants universally, and has long-term stability, which solves the problem of poor universality and stability of heterogeneous catalysts to a certain extent. Importantly, Co/BDPPF derived from waste biomass was also innovatively designed as the core of an integrated continuous purification device to achieve continuous purification of organic wastewater. In this study, agricultural waste resources were selected as biomass raw materials to achieve efficient capture of Co, and finally developed advanced AOPs catalyst with excellent performance to achieve the purification of organic wastewater. It also provides a promising solution for the preparation of simple, low-cost, large-scale production of AOPs catalysts that can be put into actual production.
高级氧化工艺(AOPs)在消除有害有机污染物方面发挥着重要作用,但开发廉价且高活性的高级催化剂面临挑战。在本研究中,一种低成本且易于获得的农业废弃物资源——柚皮果肉(PPF)生物质被用作基础原料,通过浸渍吸附/络合结合热处理,将均匀分散的小钴纳米颗粒有效地锚定在由柚皮果肉衍生的生物炭(BDPPF)中。Co/BDPPF(嵌入Co的BDPPF)能够有效地将过一硫酸盐(PMS)活化生成SO₄·⁻、·OH和O₂·⁻等活性氧物种,并实现四环素持久性有机污染物近100%的降解。Co/BDPPF不仅能在复杂水环境中高效降解四环素,还能普遍降解大多数有机污染物,且具有长期稳定性,在一定程度上解决了非均相催化剂普遍性和稳定性差的问题。重要的是,由废弃生物质衍生的Co/BDPPF还被创新性地设计为集成连续净化装置的核心,以实现有机废水的连续净化。在本研究中,选择农业废弃物资源作为生物质原料以实现对Co的高效捕获,最终开发出性能优异的高级AOPs催化剂以实现有机废水的净化。这也为制备可投入实际生产的简单、低成本、大规模生产的AOPs催化剂提供了一种有前景的解决方案。