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首页> 外文期刊>ACS applied materials & interfaces >Development of an HKUST-1 Nanofiller-Templated Poly(ether sulfone) Mixed Matrix Membrane for a Highly Efficient Ultrafiltration Process
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Development of an HKUST-1 Nanofiller-Templated Poly(ether sulfone) Mixed Matrix Membrane for a Highly Efficient Ultrafiltration Process

机译:一种高效超滤过程的HKUST-1纳米填充剂聚(醚砜)混合基质膜的研制

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摘要

Mixed-matrix membranes (MMMs) have been drawing increasing attention due to the high permeability and high rejection capabilities for highly efficient wastewater treatment applications. Nonetheless, improving the water permeance while maintaining the high rejection capability is still an ongoing challenge for the practically state-of-the-art MMMs. Herein, a new class of poly(ether sulfone) (PES) based MMM containing metal-organic framework (MOF) nanofillers of HKUST-1 and blending with poly(methyl methacrylate-co-methacrylic acid) (PMMA-co-MAA) copolymer, designated as HKUST-1@mPES MMM, were developed for the highly efficient ultrafiltration (UF) process. In this study, the nanosized HKUST-1 nanofillers were removed by water dissolution as sacrificial templating materials, so that the additional nanovoids were deliberately generated throughout the dense polymer matrix. The introduction of PMMA-co-MAA copolymer facilitated the even dispersion of HKUST-1 nanofillers in a polymer matrix, by constructing the bridge connection between inorganic nanofillers and organic matrix. The resultant HKUST-1@mPES MMM exhibited a high pure water permeability (PWP) up to 490 L-m(-2).h(-1).bar(-1), substantially reaching nearly 3 times higher than that of the mPES membrane without HKUST-1 nanofillers loading and maintaining a relatively high BSA rejection rate of 96% without obvious deterioration. The newly developed HKUST-1@mPES MMM thereby exhibited a comparable separation efficiency compared to the cutting-edge UF membranes reported so far. Overall, the nanovoid-generated approach provides new insight into developing advanced MMMs used for highly efficient water treatment applications.
机译:由于高效废水处理应用的高渗透性和高拒收能力,混合基质膜(MMMS)一直在提高越来越长的抑制。尽管如此,在维持高拒绝能力的同时改善水渗透性仍然是迈出的实际上最先进的MMM的持续挑战。在此,新类聚(醚砜)(PE)的基于HKUST-1的金属 - 有机骨架(MOF)纳米填料和与聚(甲基丙烯酸甲酯 - 共甲基丙烯酸)(PMMA-CO-MAA)共聚物共混被指定为HKUST-1 @ MPES MMM,用于高效超滤(UF)过程。在该研究中,通过水溶解作为牺牲模板材料除去纳米型HKust-1纳米填料,从而在整个致密的聚合物基质中刻意产生额外的纳米环。通过构建无机纳米填充物和有机基质之间的桥接连接,PMMA-Co-Maa共聚物的引入促进了HKUST-1纳米填充物在聚合物基质中的均匀分散。得到的HKUST-1 @ MPESMMM高达490 LM(-2).h(-1)的高纯净水渗透性(PWP),基本上达到比MPES膜高的近3倍没有HKUST-1纳米填充物加载并保持相对高的BSA抑制率为96%而无明显恶化。与到目前为止所报告的尖端UF膜相比,新开发的HKUST-1 @ MPES MMM表现出可比的分离效率。总的来说,纳米跨度产生的方法为开发用于高效水处理应用的先进MMM提供了新的洞察力。

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