In situ catalytic membrane technology for antifouling and sustainable landfill leachate management†

IF 3.1 4区 环境科学与生态学 Q3 ENGINEERING, ENVIRONMENTAL
Zhongsen Yan, Zihan Tang, Yongyuan Wang, Yuling Jiang, Haiqing Chang, Juxiang Jin, Yujia Peng and Fangshu Qu
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引用次数: 0

Abstract

Landfill leachate contains high concentrations of hazardous pollutants that require effective treatment before discharge. Membrane distillation (MD) has emerged as a promising approach for leachate treatment, but membrane fouling remains a major challenge for its practical application. This study introduces an innovative in situ catalytic MD membrane to improve antifouling performance. The MnO2-doped polyvinylidene fluoride (M-PVDF) membrane was prepared via electrospinning, incorporating an optimized amount of MnO2 and fluoroalkyl modifier. The M-PVDF membrane demonstrated excellent retention of landfill leachate pollutants across all test cycles, achieving retention rates above 99.23% for non-ammonia foulants. No membrane wetting was observed in M-PVDF during the cyclic tests, whereas conventional PVDF membranes exhibited wetting in the third cycle. The fouled M-PVDF membrane was effectively restored after cleaning with H2O2, regaining its original flux and demonstrating robust self-cleaning capabilities. This performance is attributed to the synergistic effects of micro-nano bubbles and MnO2-catalyzed H2O2 free radicals. The proposed in situ catalytic self-cleaning strategy significantly enhances the antifouling properties of MD, providing a sustainable solution for high-salinity wastewater treatment.

Abstract Image

用于防污和可持续垃圾渗滤液管理的原位催化膜技术
垃圾渗滤液含有高浓度的有害污染物,排放前需要进行有效处理。膜蒸馏(MD)是一种很有前途的处理渗滤液的方法,但膜污染仍然是其实际应用的主要挑战。介绍了一种新型的原位催化MD膜,以提高其防污性能。采用静电纺丝法制备了MnO2掺杂的聚偏氟乙烯(M-PVDF)膜,并添加了最佳用量的MnO2和氟烷基改性剂。在所有的测试周期中,M-PVDF膜对垃圾渗滤液污染物的保留率都很好,对非氨类污染物的保留率超过99.23%。在循环测试中,M-PVDF没有观察到膜润湿,而传统的PVDF膜在第三个循环中表现出润湿。受污染的M-PVDF膜在H2O2清洗后得到有效修复,恢复了原有的通量,并表现出强大的自清洁能力。这种性能是由于微纳气泡和mno2催化的H2O2自由基的协同作用。所提出的原位催化自清洁策略显著提高了MD的防污性能,为高盐度废水处理提供了可持续的解决方案。
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来源期刊
Environmental Science: Water Research & Technology
Environmental Science: Water Research & Technology ENGINEERING, ENVIRONMENTALENVIRONMENTAL SC-ENVIRONMENTAL SCIENCES
CiteScore
8.60
自引率
4.00%
发文量
206
期刊介绍: Environmental Science: Water Research & Technology seeks to showcase high quality research about fundamental science, innovative technologies, and management practices that promote sustainable water.
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