Nanoporous dopamine/β-cyclodextrin PES-PMACZ/MOF modified membrane for high-efficiency, low-fouling extraction of microplastics and PCB 209 from synthetic landfill leachate

IF 5.4 Q2 ENGINEERING, ENVIRONMENTAL
Mahmoud Babalar , Sumi Siddiqua , Lydia McIntyre , Destiny Ellenor , Jacek Usakiewicz
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Abstract

This research focused on the development of 9 advanced Dopamine/β-Cyclodextrin modified polyethersulfone (PES) membranes, incorporating a polymer-coated magnetic activated biochar-zeolite composite (PMACZ) and NH2-MIL-101(Al) metal organic framework (MOF) in varying proportions. Membranes were designed for extraction of microplastics (MPs) and Decachlorobiphenyl (PCB 209) from synthetic landfill leachate (SLL). Characterization of the synthesized membranes was conducted using scanning electron microscopy and energy dispersive spectroscopy (SEM/EDS), Brunauer–Emmett–Teller (BET) analysis, X-ray diffraction (XRD), and raman spectroscopy. The membranes were evaluated for permeate flux, rejection efficiency, and fouling behavior. The membrane exhibiting optimal performance was selected for further examination, including cyclic stability, rejection and release performance, and pH tolerance. The rejection tests revealed complete removal of MPs and PCB 209 in water, while in SLL, removal rates were 100% for MPs and 99.67% for PCB 209. A decline in removal efficiency was observed with increased cycles. However, this decline was not significant. Release performance tests indicated negligible release (0% for MPs and 0.32% for PCB 209 in RO water; 0% for MPs and 0.8% for PCB 209 in SLL). Release of MPs under reversed flow conditions simulating backwash demonstrated rates of 95% and 93%. Notably, removal efficiencies exceeded 96% across all tested pH ranges, with optimal performance observed at pH levels of 5–8 for MPs and pH 8 for PCB 209, achieving complete removal. The membranes exhibited high permeability, 20 % enhanced fouling resistance, and exceptional rejection of both contaminants, affirming their potential for application in landfill leachate filtration.

Abstract Image

这项研究的重点是开发 9 种先进的多巴胺/β-环糊精改性聚醚砜(PES)膜,其中包含不同比例的聚合物包覆磁性活化生物炭-沸石复合材料(PMACZ)和 NH2-MIL-101(Al)金属有机框架(MOF)。设计的膜用于从合成垃圾填埋场渗滤液(SLL)中提取微塑料(MPs)和十氯联苯(PCB 209)。使用扫描电子显微镜和能量色散光谱仪(SEM/EDS)、Brunauer-Emmett-Teller(BET)分析、X 射线衍射(XRD)和拉曼光谱仪对合成膜进行了表征。对膜的渗透通量、排斥效率和堵塞行为进行了评估。选择了表现出最佳性能的膜进行进一步检查,包括循环稳定性、排斥和释放性能以及 pH 值耐受性。排斥测试表明,在水中可完全去除 MPs 和 PCB 209,而在 SLL 中,MPs 的去除率为 100%,PCB 209 的去除率为 99.67%。随着循环次数的增加,去除效率有所下降。但下降幅度不大。释放性能测试表明,释放量微乎其微(在反渗透水中,多氯联苯的释放量为 0%,多氯联苯 209 的释放量为 0.32%;在 SLL 中,多氯联苯的释放量为 0%,多氯联苯 209 的释放量为 0.8%)。在模拟反冲洗的反向流动条件下,多氯联苯的释放率分别为 95% 和 93%。值得注意的是,在所有测试的 pH 值范围内,去除率都超过了 96%,其中 MPs 在 pH 值为 5-8 时和 PCB 209 在 pH 值为 8 时性能最佳,实现了完全去除。这种膜具有高渗透性,抗污垢能力提高了 20%,对这两种污染物的去除率都非常高,这充分证明了它们在垃圾填埋场渗滤液过滤中的应用潜力。
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来源期刊
Journal of hazardous materials advances
Journal of hazardous materials advances Environmental Engineering
CiteScore
4.80
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