首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Solid-State NMR Molecular Dynamics Characterization of a Highly Chlorine-Resistant Disulfonated Poly(arylene ether sulfone) Random Copolymer Blended with Poly(ethylene glycol) Oligomers for Reverse Osmosis Applications
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Solid-State NMR Molecular Dynamics Characterization of a Highly Chlorine-Resistant Disulfonated Poly(arylene ether sulfone) Random Copolymer Blended with Poly(ethylene glycol) Oligomers for Reverse Osmosis Applications

机译:反渗透应用中高度耐氯的磺化聚亚芳基醚砜无规共聚物与聚乙二醇低聚物共混的固态NMR分子动力学表征

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摘要

We have investigated the dynamics-transport correlations of a chlorine-resistant polymeric system designed as a next-generation reverse osmosis (RO) membrane material by solid-state NMR spectroscopy. A random disulfonated poly-(arylene ether sulfone) copolymer in the potassium salt (-SO3 K~+) form (BPS-20K) was blended with polyethylene glycol)s (PEGs) for improving water permeability. Blended BPS-20K/PEG membranes maintained the intrinsic chlorine-resistant property of BPS-20K, with a somewhat reduced salt rejection. The dynamic characteristics of BPS-20K/PEG blends studied by the spin-lattice relaxation time (T1) and rotating frame spin-lattice relaxation time (T_(1p)) indicated correlations with the observed water uptake and permeability. ~1H Tt measured on the polymer's aromatic phenylene rings and ~1H T_(1p) measured on the oxyethylene (-CH2CH2O-) units of PEG were sensitive to the morphological changes, due to the blending of PEGs, induced in the mixed matrices. Membranes made of BPS-20K/PEG blends, with a lower molecular weight and higher amount of PEGs, that exhibited higher water permeability also provided shorter ~1H T1 and T_(1p)relaxation times. PEGs behaved as a plasticizer in the BPS-20K matrix, providing shorter ~1H T1 times and therefore shorter motional correlation times in the nanosecond regime. ~1H T_(1p) data have indicated the formation of networks among different polymeric chains via K~+-oxyethylene ion-dipole interactions. Other properties that exhibit ad hoc correlations with the observed T1 and T_(1p) times include density, glass transition temperature, and salt rejection. Additionally, the ring flip motions measured on the hydrophobic phenylene rings did not reveal any correlations to the molecular weight and amount of PEGs blended, suggesting that the blending of PEG molecules modifies only the ionic domains of the BPS-20K polymer matrix.
机译:我们已经通过固态NMR光谱研究了设计为下一代反渗透(RO)膜材料的耐氯聚合物系统的动力学-传输相关性。将钾盐(-SO 3 K +)形式的无规二磺化聚(亚芳基醚砜)共聚物(BPS-20K)与聚乙二醇)(PEG)共混以提高水渗透性。混合的BPS-20K / PEG膜保持了BPS-20K固有的耐氯性,并且盐吸收率有所降低。通过自旋晶格弛豫时间(T1)和旋转框架自旋晶格弛豫时间(T_(1p))研究的BPS-20K / PEG共混物的动力学特性表明与观察到的吸水率和渗透率相关。在PEG的共混物中,由于PEG的共混,在聚合物的芳香亚苯基环上测得的〜1H Tt和在PEG的氧化乙烯(-CH2CH2O-)单元上测得的〜1H T_(1p)对形态变化敏感。由BPS-20K / PEG共混物制成的膜具有较低的分子量和较高的PEG量,表现出较高的水渗透性,还提供了较短的〜1H T1和T_(1p)松弛时间。 PEG在BPS-20K基质中充当增塑剂,在纳秒范围内提供较短的〜1H T1时间,因此缩短了运动相关时间。 〜1H T_(1p)数据表明,不同的聚合物链之间通过K +-氧乙烯离子-偶极相互作用形成网络。与观察到的T1和T_(1p)时间表现出特殊的相关性的其他属性包括密度,玻璃化转变温度和脱盐率。另外,在疏水性亚苯基环上测得的环翻转运动没有揭示与掺混的PEG的分子量和量有任何相关性,这表明PEG分子的掺混仅修饰了BPS-20K聚合物基质的离子域。

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