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使用嵌段聚合物复合膜对重金属污染物进行高亲和力检测与捕获

High-Affinity Detection and Capture of Heavy Metal Contaminants using Block Polymer Composite Membranes.

作者信息

Zhang Yizhou, Vallin Joseph R, Sahoo Jugal Kishore, Gao Feng, Boudouris Bryan W, Webber Matthew J, Phillip William A

机构信息

Department of Chemical and Biomolecular Engineering, University of Notre Dame, Notre Dame, Indiana 46556, United States.

Charles D. Davidson School of Chemical Engineering and Department of Chemistry, Purdue University, West Lafayette, Indiana 47907, United States.

出版信息

ACS Cent Sci. 2018 Dec 26;4(12):1697-1707. doi: 10.1021/acscentsci.8b00690. Epub 2018 Dec 6.

Abstract

Adsorptive membranes offer one possible solution to the challenge of removing and recovering heavy metal ion contaminants and resources from water supplies. However, current membrane-based sorbents suffer from low binding affinities, leading to issues when contaminants are present at trace concentrations or when the source waters have a high concentration of background electrolytes that compete for open binding sites. Here, these challenges are addressed in the design of a highly permeable (i.e., permeability of ∼2.8 × 10 L m h bar) sorbent platform based on polysulfone and polystyrene--poly(acrylic acid) composite membranes. The membranes possess a fully interconnected network of poly(acrylic acid)-lined pores, which enables the surface chemistry to be tailored through sequential attachment of polyethylenimine brushes and metal-binding terpyridine ligands. The polyethylenimine brushes increase the saturation capacity, while the addition of terpyridine enables high-affinity binding to a diversity of transition metal ions (i.e., Pd, Cd, Hg, Pb, Zn, Co, Ni, Fe, Nd, and Sm). This platform removes these metal contaminants from solution with a sorbent capacity of 1.2 mmol g [based on Cu uptake]. The metal capture performance of the functionalized membranes persists in spite of high concentrations of competitive ions, with >99% removal of Pb and Cd ions from artificial groundwater and seawater solutions. Breakthrough experiments demonstrate the efficient purification of feed solutions containing multiple heavy metal ions under dynamic flow conditions. Finally, fluorescence quenching of the terpyridine moiety upon metal ion complexation offers an in situ probe to monitor the extent of sorbent saturation with a Stern-Volmer association constant of 2.9 × 10 L mol. The permeability, capacity, and affinity of these membranes, with high-density display of a metal-binding ligand, offer a chemically tailored platform to address the challenges that arise in ensuring clean water.

摘要

吸附膜为从供水系统中去除和回收重金属离子污染物及资源这一挑战提供了一种可能的解决方案。然而,目前基于膜的吸附剂存在结合亲和力低的问题,当污染物以痕量浓度存在或源水含有高浓度背景电解质竞争开放结合位点时,就会产生问题。在此,通过设计一种基于聚砜和聚苯乙烯 - 聚(丙烯酸)复合膜的高渗透性(即渗透率约为2.8×10 L m h bar)吸附剂平台来应对这些挑战。这些膜具有由聚(丙烯酸)衬里孔构成的完全互连网络,这使得能够通过依次连接聚乙烯亚胺刷和金属结合三联吡啶配体来定制表面化学性质。聚乙烯亚胺刷提高了饱和容量,而三联吡啶的添加使得能够与多种过渡金属离子(即钯、镉、汞、铅、锌、钴、镍、铁、钕和钐)进行高亲和力结合。该平台以1.2 mmol g [基于铜的吸附量] 的吸附剂容量从溶液中去除这些金属污染物。尽管存在高浓度的竞争离子,功能化膜的金属捕获性能依然存在,在人工地下水和海水溶液中对铅和镉离子的去除率>99%。穿透实验证明了在动态流动条件下对含有多种重金属离子的进料溶液进行有效净化。最后,金属离子络合时三联吡啶部分的荧光猝灭提供了一种原位探针,用于监测吸附剂饱和程度,其斯特恩 - 沃尔默缔合常数为2.9×10 L mol。这些膜的渗透率、容量和亲和力,以及金属结合配体的高密度展示,提供了一个化学定制的平台,以应对确保清洁水时出现的挑战。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5511/6311697/c7860071d27d/oc-2018-00690g_0001.jpg

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