木质素磺酸盐包覆ZnO纳米颗粒修饰正向渗透膜处理重金属废水

IF 4.7 3区 工程技术 Q2 ENGINEERING, ENVIRONMENTAL
Kobra Borjsaz, Alireza Shakeri, Ali Taheri Najafabadi
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引用次数: 0

摘要

本研究以工业木质素磺酸盐为原料,采用新颖的原位方法在ZnO纳米颗粒表面涂覆木质素磺酸盐(ZnO-木质素),通过界面聚合获得亲水性纳米材料,并将其掺入薄膜纳米复合材料(TFN)正向渗透膜的聚酰胺层中。在聚酰胺层中掺入亲水性zno -木质素,由于吸附在亲水性纳米颗粒上的水分子可以通过水解三甲基氯单体终止界面聚合,从而诱导纳米颗粒周围形成纳米通道。此外,zno -木质素显著影响了改性TFN膜中聚酰胺层的性能,使其具有比裸薄膜复合(TFC)膜更亲水、更薄、更光滑的表面。羟基与三甲基氯的共价键使聚酰胺薄膜的合成具有高稳定性和改进的性能。同时,膜表面的磺酸基带负电荷,极大地提高了膜对NaCl和重金属离子的选择性。聚酰胺层性质的变化几乎是水通量的两倍,提高了对最佳膜的选择性。在400 ppm zno -木质素的辅助下,TFN-ZLS的水通量。其中2个膜的水通量提高到22.5 LMH,与对照TFC膜相比,水通量提高了95%。此外,TFN-ZLS。2膜对Cr+3和Cu+2的截除率高于对照TFC膜,验证了添加zno -木质素增强了聚酰胺层的选择性。研究结果表明,zno -木质素纳米颗粒的亲水壳显著地形成了具有高分离性能的TFN膜。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Forward Osmosis Membranes Modified with Lignosulfonate Coated ZnO Nanoparticles for Efficient Heavy Metal Wastewater Treatment

Forward Osmosis Membranes Modified with Lignosulfonate Coated ZnO Nanoparticles for Efficient Heavy Metal Wastewater Treatment

In the present study, the ZnO nanoparticle surface is coated with lignosulfonate (ZnO-lignin) via a novel in-situ method using industrial lignosulfonate as raw materials to obtain a hydrophilic nanomaterial for incorporation into the polyamide layer of a thin-film nanocomposite (TFN) forward osmosis membrane through interfacial polymerization. Incorporation of hydrophilic ZnO-lignin into the polyamide layer induces the formation of nanochannels around the nanoparticles since water molecules absorbed on hydrophilic nanoparticles can terminate the interfacial polymerization by hydrolysis of trimesoyl chloride monomers. In addition, ZnO-lignin significantly impacts the polyamide layer’s properties in the modified TFN membranes, which had measurably more hydrophilic, thinner and smoother surfaces than the bare thin film composite (TFC) membrane. The covalent bonding of hydroxyl groups with trimesoyl chloride enables the synthesis of a thin polyamide film with high stability and improved performance. At the same time, the sulfonic groups endive membrane surfaces with a negative charge, hence immensely enhancing the membrane selectivity toward NaCl and heavy metal ions. These changes in the properties of the polyamide layer are nearly twice the water flux and raise the selectivity for the optimal membrane. With the assistance of 400 ppm of ZnO-lignin, the water flux of the TFN-ZLS.2 membranes were augmented up to 22.5 LMH, corresponding to 95% of the water flux enhancement compared to the control TFC membrane. In addition, the TFN-ZLS.2 membrane presented higher rejection toward Cr+3 and Cu+2 than control TFC membranes, verifying enhancement of the selectivity of the polyamide layer by incorporating ZnO-lignin. Our results indicate that hydrophilic shells in ZnO-lignin nanoparticles significantly develop TFN membranes with high separation performance.

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来源期刊
Journal of Polymers and the Environment
Journal of Polymers and the Environment 工程技术-高分子科学
CiteScore
9.50
自引率
7.50%
发文量
297
审稿时长
9 months
期刊介绍: The Journal of Polymers and the Environment fills the need for an international forum in this diverse and rapidly expanding field. The journal serves a crucial role for the publication of information from a wide range of disciplines and is a central outlet for the publication of high-quality peer-reviewed original papers, review articles and short communications. The journal is intentionally interdisciplinary in regard to contributions and covers the following subjects - polymers, environmentally degradable polymers, and degradation pathways: biological, photochemical, oxidative and hydrolytic; new environmental materials: derived by chemical and biosynthetic routes; environmental blends and composites; developments in processing and reactive processing of environmental polymers; characterization of environmental materials: mechanical, physical, thermal, rheological, morphological, and others; recyclable polymers and plastics recycling environmental testing: in-laboratory simulations, outdoor exposures, and standardization of methodologies; environmental fate: end products and intermediates of biodegradation; microbiology and enzymology of polymer biodegradation; solid-waste management and public legislation specific to environmental polymers; and other related topics.
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