School of the Environment and Safety Engineering, Jiangsu University, Zhenjiang, 212013, China; Jiangsu Collaborative Innovation Center of Technology and Material of Water Treatment, Suzhou, 215009, China.
School of the Environment and Safety Engineering, Jiangsu University, Zhenjiang, 212013, China.
Chemosphere. 2022 Mar;291(Pt 2):132774. doi: 10.1016/j.chemosphere.2021.132774. Epub 2021 Nov 3.
In this paper, the prepared graphene-WO nanocomposites (rGO-WO) were added into a dielectric barrier discharge (DBD) plasma system with spiral discharge electrode to set up a collaborative process to treat the dimethyl phthalate (DMP) in water. Degradation of the DMP under different experimental conditions were studied to illustrate the catalysis of the rGO-WO in the DBD plasma system. The obtained results proved that there was the catalysis of the rGO-WO for the DMP degradation within the studied DMP concentration, solution initial pH values and conductivities. From the results of the energy utilization efficiency (G) analysis, the catalysis was more apparent in the case of the oxygen bubbling system than that in the nitrogen or the air bubbling system, which was due to the higher oxygen constitution in the oxygen bubbling system. The reduction of the measured liquid phase ozone concentrations in the DBD/rGO-WO system bubbled with air as well as oxygen than those measured in the sole DBD system, which verified the consumption of the ozone by the catalysis of the rGO-WO. Furthermore, the UV-Vis and the three-dimensional fluorescence spectra analysis were also carried out to state the catalytic effect of the rGO-WO for the DMP degradation. Toxicity analysis for the degradation byproducts confirmed the collaborative process could reduce the negative effect of the original DMP on the environment.
本文将制备的氧化石墨烯-氧化钨纳米复合材料(rGO-WO)添加到带有螺旋放电电极的介质阻挡放电(DBD)等离子体系统中,建立协同工艺来处理水中的邻苯二甲酸二甲酯(DMP)。研究了不同实验条件下 DMP 的降解情况,以说明 rGO-WO 在 DBD 等离子体系统中的催化作用。结果表明,在所研究的 DMP 浓度、溶液初始 pH 值和电导率范围内,rGO-WO 对 DMP 降解具有催化作用。从能量利用效率(G)分析的结果来看,在含氧曝气系统中的催化作用比在氮气或空气曝气系统中的催化作用更为明显,这是由于含氧曝气系统中氧的组成更高。在 DBD/rGO-WO 系统中用空气和氧气曝气时,测量的液相臭氧浓度比在单纯 DBD 系统中测量的要低,这验证了 rGO-WO 的催化作用消耗了臭氧。此外,还进行了 UV-Vis 和三维荧光光谱分析,以说明 rGO-WO 对 DMP 降解的催化作用。对降解副产物的毒性分析证实,协同工艺可以降低原始 DMP 对环境的负面影响。