Positron Annihilation Spectroscopic Evidence to Demonstrate the Flux-Enhancement Mechanism in Morphology-Controlled Thin-Film-Composite (TFC) Membrane

化学工程 材料科学 界面聚合 水溶液 薄膜复合膜 正电子湮没谱学 相(物质) X射线光电子能谱 聚合 混溶性 溶解度 聚酰胺 分析化学(期刊) 高分子化学 化学 聚合物 复合材料 有机化学 正电子湮没 正电子 反渗透 单体 电子 工程类 物理 量子力学 生物化学
作者
Sung Ho Kim,Seung‐Yeop Kwak,T. Suzuki
出处
期刊:Environmental Science & Technology [American Chemical Society]
卷期号:39 (6): 1764-1770 被引量:465
标识
DOI:10.1021/es049453k
摘要

In this study, positron annihilation lifetime spectroscopy (PALS) is applied to explain the flux-enhancement mechanism in thin-film-composite (TFC) membranes prepared by using dimethyl sulfoxide (DMSO) as an additive in the interfacial polymerization. The TFC membranes show a large increase in water flux, up to 5-fold, compared to nonadditive membrane. Atomic force microscopy (AFM) shows that surface roughness and surface area increase when DMSO in the aqueous phase solution phase works to increase miscibility of the aqueous and the organic phase by reducing the solubility difference of two immiscible solutions. X-ray photoelectron spectroscopy (XPS) reveals the variation of the chemical compositions to the extent that there is a considerable increase in the cross-linked amide linkages of the flux-enhanced TFC membranes. The effects of these structural changes on the molecular-size free volume properties are evaluated by PALS studies. The PALS results are the first to experimentally show that the thin films of cross-linked aromatic polyamide RO membranes are composed of two types of pores having radii of about 2.1−2.4 Å from τ3, network pore, and 3.5−4.5 Å from τ4, aggregate pore. The increase in the size and number of network pores by means of DMSO addition during interfacial polymerization enhances the water flux notably. The size of aggregate pores also increases and may contribute to enhance water flux, although their number inevitably decreases as the number of network pores becomes increased. Details on the correlations between RO performances and o-Ps lifetime parameters are clearly described based on the pore-flow model of reverse osmosis developed by Sourirajan et al.
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