Liu Xiaohong, Li Zhangli, Jin Lei, Wang Haoqi, Huang Yingping, Huang Di, Liu Xiang
Engineering Research Center of Eco-Environment in Three Gorges Reservoir Region of Ministry of Education, College of Hydraulic & Environmental Engineering, College of Materials and Chemical Engineering, China Three Gorges University, Yichang, Hubei 443002, China.
Hubei Three Gorges Laboratory, Yichang, Hubei 443007, China.
Langmuir. 2024 Jul 23;40(29):15301-15309. doi: 10.1021/acs.langmuir.4c01969. Epub 2024 Jul 9.
Natural mineral-based advanced oxidation processes (AOPs) are now receiving increasing attention for the efficient degradation of pollutants. In this work, we used a common reducing agent (NaBH) to treat natural Hematite to obtain modified Hematite (Hematite-(R)) and applied it to activate peracetic acid (PAA) for efficient degradation of cefazolin (CFZ). Compared with Hematite, the Hematite-(R)/PAA system increased the degradation rate of CFZ by 21.7% within 80 min under neutral conditions. Scavenging experiments and electron paramagnetic resonance (EPR) technology were introduced to identify the principal roles of O, CHC(O)OO, and OH for CFZ removal over the Hematite-(R)/PAA process. The outstanding capability of Hematite-(R) could be mainly due to the higher percentage of Fe(II) (52%) on the surface of catalysts. Furthermore, the possible degradation pathways of CFZ were explored. Moreover, the Hematite-(R)/PAA process showed a superior CFZ removal efficiency with a wide initial pH scope of 1.0-9.0. The degradation efficiency of CFZ showed a negligible effect in the presence of Cl, SO, and NO, while significant inhibition was recorded after the addition of HPO and CO. The inhibition of humic acid (HA) on CFZ degradation via the Hematite-(R)/PAA process showed an obvious concentration dependence. This work could provide strong support for the use of natural Hematite in water purification.
基于天然矿物的高级氧化工艺(AOPs)目前因能高效降解污染物而受到越来越多的关注。在本研究中,我们使用一种常见的还原剂(NaBH)处理天然赤铁矿以获得改性赤铁矿(赤铁矿-(R)),并将其应用于活化过氧乙酸(PAA)以高效降解头孢唑林(CFZ)。与赤铁矿相比,在中性条件下,赤铁矿-(R)/PAA体系在80分钟内将CFZ的降解率提高了21.7%。引入清除实验和电子顺磁共振(EPR)技术来确定O、CHC(O)OO和OH在赤铁矿-(R)/PAA过程中对CFZ去除的主要作用。赤铁矿-(R)的出色性能可能主要归因于催化剂表面较高比例的Fe(II)(52%)。此外,还探索了CFZ可能的降解途径。而且,赤铁矿-(R)/PAA工艺在1.0 - 9.0的宽初始pH范围内显示出优异的CFZ去除效率。在Cl、SO和NO存在下,CFZ的降解效率显示出可忽略不计的影响,而添加HPO和CO后则记录到显著的抑制作用。腐殖酸(HA)对通过赤铁矿-(R)/PAA工艺降解CFZ的抑制作用呈现出明显的浓度依赖性。这项工作可为天然赤铁矿在水净化中的应用提供有力支持。