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通过表面等离子体改性提高薄膜复合膜的性能。

Towards Enhanced Performance Thin-film Composite Membranes via Surface Plasma Modification.

机构信息

Institute for Sustainability and Innovation, College of Engineering and Science, Victoria University, Melbourne, Australia 3030.

Deakin University, Institute for Frontier Materials, Waurn Ponds, Australia 3216.

出版信息

Sci Rep. 2016 Jul 1;6:29206. doi: 10.1038/srep29206.

Abstract

Advancing the design of thin-film composite membrane surfaces is one of the most promising pathways to deal with treating varying water qualities and increase their long-term stability and permeability. Although plasma technologies have been explored for surface modification of bulk micro and ultrafiltration membrane materials, the modification of thin film composite membranes is yet to be systematically investigated. Here, the performance of commercial thin-film composite desalination membranes has been significantly enhanced by rapid and facile, low pressure, argon plasma activation. Pressure driven water desalination tests showed that at low power density, flux was improved by 22% without compromising salt rejection. Various plasma durations and excitation powers have been systematically evaluated to assess the impact of plasma glow reactions on the physico-chemical properties of these materials associated with permeability. With increasing power density, plasma treatment enhanced the hydrophilicity of the surfaces, where water contact angles decreasing by 70% were strongly correlated with increased negative charge and smooth uniform surface morphology. These results highlight a versatile chemical modification technique for post-treatment of commercial membrane products that provides uniform morphology and chemically altered surface properties.

摘要

提高薄膜复合膜表面的设计水平是处理不同水质、提高其长期稳定性和渗透性的最有前途的途径之一。尽管等离子体技术已被用于研究体相微滤和超滤膜材料的表面改性,但薄膜复合膜的改性尚未得到系统研究。在这里,通过快速简便、低压、氩等离子体激活,显著提高了商业薄膜复合脱盐膜的性能。压力驱动水脱盐测试表明,在低功率密度下,通量提高了 22%,而盐截留率没有降低。系统地评估了各种等离子体持续时间和激发功率,以评估等离子体辉光反应对与渗透性相关的这些材料的物理化学性质的影响。随着功率密度的增加,等离子体处理增强了表面的亲水性,水接触角降低了 70%,与增加的负电荷和光滑均匀的表面形态强烈相关。这些结果突出了一种用于商业膜产品后处理的多功能化学改性技术,该技术可提供均匀的形态和化学改性的表面特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5b5d/4929684/edd0f8cd60b0/srep29206-f1.jpg

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