Liu Lijun, Wang Ning, Wan Liang, Zhao Chao, Niu Kunpeng, Lyu Dajuan, Liao Zhaolong, Shui Biao
National Engineering Research Center of Fiber Optic Sensing Technology and Networks, Wuhan University of Technology, Wuhan 430070, China.
State Key Laboratory of Optical Fiber and Cable Manufacture Technology, Yangtze Optical Fiber and Cable Joint Stock Limited Company, Wuhan 430070, China.
Micromachines (Basel). 2022 Jul 16;13(7):1125. doi: 10.3390/mi13071125.
The catalysts employed in catalytic reactors greatly affect the reaction efficiency of the reaction system and the reactor’s performance. This work presents a rapid comparative study on three kinds of Fe-based materials integrated into an optofluidic Fenton reactor for water treatment. The Fe-based sheets (FeSiB, FeNbCuSiB, and FeNi) were respectively implanted into the reaction chamber to degrade the organic dyes with the assistance of H2O2. In the experiment, by adjusting the hydrogen peroxide concentration, flow rate, and light irradiation, the applicable conditions of the Fe-based materials for the dye degradation could be evaluated quickly to explore the optimal design of the Fenton reaction system. The results indicated that FeNi (1j85) exhibits excellent degradability in the microreactor, the reaction rate can reach 23.4%/s at the flow rate of 330 μL/min, but its weak corrosion resistance was definitely demonstrated. Although the initial degradability of the microreactor by using FeNbCuSiB (1k107) was not as good as that of 1j85, it increased after being reused several times instead, and the degradation efficiency reached >98% after being reused five times. However, the FeSiB (1k101) material shows the worst degradability and recycling. Therefore, in contrast, 1k107 has the greatest potential to be used in Fenton reactors for practical water treatment.
催化反应器中使用的催化剂对反应系统的反应效率和反应器性能有很大影响。这项工作对三种集成到光流体芬顿反应器中用于水处理的铁基材料进行了快速对比研究。将铁基片材(FeSiB、FeNbCuSiB和FeNi)分别植入反应室,在H2O2的辅助下降解有机染料。在实验中,通过调节过氧化氢浓度、流速和光照,可以快速评估铁基材料用于染料降解的适用条件,以探索芬顿反应系统的最佳设计。结果表明,FeNi(1j85)在微反应器中表现出优异的降解性能,在流速为330 μL/min时反应速率可达23.4%/s,但其耐腐蚀性较差。虽然使用FeNbCuSiB(1k107)的微反应器初始降解性能不如1j85,但多次重复使用后有所提高,重复使用五次后降解效率达到>98%。然而,FeSiB(1k101)材料的降解性能和循环利用性最差。因此,相比之下,1k107在实际水处理的芬顿反应器中具有最大的应用潜力。