Xiao Wei, Zhang He, Wang Xiaohuan, Wang Biao, Long Tao, Deng Sha, Yang Wei
School of Resources Engineering, Xi'an University of Architecture and Technology, Xi'an 710055, China.
Western Mining Company Limited, Xining 810002, China.
Nanomaterials (Basel). 2022 Jun 7;12(12):1958. doi: 10.3390/nano12121958.
Ozone micro/nanobubbles with catalytic processes are widely used in the treatment of refractory organic wastewater. Micro/nanobubble technology overcomes the limitations of ozone mass transfer and ozone utilization in the application of ozone oxidation, and effectively improves the oxidation efficiency of ozone. The presence of micro/nanobubbles keeps the catalyst particles in a dynamic discrete state, which effectively increases the contact frequency between the catalyst and refractory organic matter and greatly improves the mineralization efficiency of refractory organic matter. This paper expounds on the characteristics and advantages of micro/nanobubble technology and summarizes the synergistic mechanism of microbubble nanoparticles and the mechanism of catalyst ozone micro/nanobubble systems in the treatment of refractory organics. An interaction mechanism of nanoparticles and ozone microbubbles is suggested, and the proposed theories on ozone microbubble systems are discussed with suggestions for future studies on systems of nanoparticles and ozone microbubbles.
具有催化过程的臭氧微/纳米气泡被广泛应用于难降解有机废水的处理。微/纳米气泡技术克服了臭氧氧化应用中臭氧传质和臭氧利用的局限性,有效提高了臭氧的氧化效率。微/纳米气泡的存在使催化剂颗粒保持动态离散状态,有效增加了催化剂与难降解有机物的接触频率,大大提高了难降解有机物的矿化效率。本文阐述了微/纳米气泡技术的特点和优势,总结了微气泡纳米颗粒的协同作用机制以及催化剂臭氧微/纳米气泡体系处理难降解有机物的机制。提出了纳米颗粒与臭氧微气泡的相互作用机制,并对所提出的臭氧微气泡体系理论进行了讨论,同时给出了关于纳米颗粒与臭氧微气泡体系未来研究的建议。