He Yuan, Shen Jie, Alharbi Njud S, Chen Changlun
Institute of Plasma Physics, HFIPS, Chinese Academy of Sciences, P.O. Box 1126, Hefei, 230031, People's Republic of China.
University of Science and Technology of China, Hefei, 230000, People's Republic of China.
Environ Sci Pollut Res Int. 2023 Mar;30(12):32123-32152. doi: 10.1007/s11356-023-25524-5. Epub 2023 Jan 30.
Volatile organic compounds (VOCs) have posed a severe threat on both ecosystem and human health which thus have gained much attention in recent years. Nonthermal plasma (NTP) as an alternative to traditional methods has been employed to degrade VOC in the atmosphere and wastewater for its high removal efficiency (up to 100%), mild operating conditions, and environmental friendliness. This review outlined the principles of NTP production and the applications on VOC removal in different kinds of reactors, like single/double dielectric barrier discharge, surface discharge, and gliding arc discharge reactors. The combination of NTP with catalysts/oxidants was also applied for VOC degradation to further promote the energy efficiency. Further, detailed explanations were given of the effect of various important factors including input/reactor/external conditions on VOC degradation performance. The reactive species (e.g., high-energy electrons, HO·, O·, N, Ar, O, HO) generated in NTP discharge process have played crucial roles in decomposing VOC molecules; therefore, their variation under different parameter conditions along with the reaction mechanisms involved in these NTP technologies was emphatically explained. Finally, a conclusion of the NTP technologies was presented, and special attention was paid to future challenges for NTP technologies in VOC treatment to stimulate the advances in this topic.
挥发性有机化合物(VOCs)对生态系统和人类健康都构成了严重威胁,因此近年来备受关注。非热等离子体(NTP)作为传统方法的替代技术,因其高去除效率(高达100%)、温和的操作条件和环境友好性,已被用于降解大气和废水中的VOC。本文综述了NTP的产生原理及其在不同类型反应器(如单/双介质阻挡放电、表面放电和滑动弧放电反应器)中去除VOC的应用。NTP与催化剂/氧化剂的组合也被用于VOC降解,以进一步提高能源效率。此外,还详细解释了包括输入/反应器/外部条件在内的各种重要因素对VOC降解性能的影响。NTP放电过程中产生的活性物种(如高能电子、HO·、O·、N、Ar、O、HO)在分解VOC分子中起着关键作用;因此,着重解释了它们在不同参数条件下的变化以及这些NTP技术所涉及的反应机理。最后,对NTP技术进行了总结,并特别关注了NTP技术在VOC处理方面未来面临的挑战,以推动该领域的进展。