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Degradation of Poly(Ether Sulfone)/Polyvinylpyrrolidone Membranes by Sodium Hypochlorite: Insight from Advanced Electrokinetic Characterizations

机译:次氯酸钠降解聚醚砜/聚乙烯吡咯烷酮膜的研究:先进的电动特性

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摘要

Poly(ether sulfone) (PES)/polyvinylpyrroli-done (PVP) membranes are widely used in various industrial fields such as drinking water production and in the dairy industry. However, the use of oxidants to sanitize the processing equipment is known to impair the integrity and lifespan of polymer membranes. In this work we showed how thorough electrokinetic measurements can provide essential information regarding the mechanism of degradation of PES/ PVP membranes by sodium hypochlorite. Tangential streaming current measurements were performed with ultrafiltration and nanofiltration PES/PVP membranes for various aging times. The electrokinetic characterization of membranes was complemented by FTIR-ATR spectroscopy. Results confirmed that sodium hypochlorite induces the degradation of both PES and PVP. This latter is easily oxidized by sodium hypochlorite, which leads to an increase in the negative charge density of the membrane due to the formation of carboxylic acid groups. The PVP was also found to be partly released from the membrane with aging time. Thanks to the advanced electrokinetic characterization implemented in this work it was possible for the first time to demonstrate that two different mechanisms are involved in the degradation of PES. Phenol groups were first formed as a result of the oxidation of PES aromatic rings by substitution of hydrogen by hydroxyl radicals. For more severe aging conditions, this membrane degradation mechanism was followed by the formation of sulfonic acid functions, thus indicating a second degradation process through scission of PES chains.
机译:聚醚砜(PES)/聚乙烯吡咯烷酮(PVP)膜广泛用于各种工业领域,例如饮用水生产和乳品工业。然而,已知使用氧化剂对处理设备进行消毒会损害聚合物膜的完整性和寿命。在这项工作中,我们展示了全面的电动测量如何能够提供有关次氯酸钠降解PES / PVP膜机理的基本信息。使用超滤和纳滤PES / PVP膜对各种老化时间进行切向流电流测量。膜的电动特性通过FTIR-ATR光谱进行了补充。结果证实,次氯酸钠可诱导PES和PVP降解。后者容易被次氯酸钠氧化,由于形成羧酸基团,导致膜的负电荷密度增加。还发现随着时间的流逝,PVP从膜中部分释放。由于这项工作中实现了先进的电动特性,因此首次有可能证明PES降解涉及两种不同的机制。由于PES芳香环被氢取代为氢氧自由基,首先形成了酚基。对于更严重的老化条件,这种膜降解机制随后是磺酸官能团的形成,因此表明通过切断PES链可进行第二次降解过程。

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  • 来源
    《Environmental Science & Technology》 |2014年第22期|13419-13426|共8页
  • 作者单位

    Universite de Rennes 1, Institut des Sciences Chimiques de Rennes (UMR CNRS 6226), 263 Avenue du General Leclerc, CS 74205, 35042 Rennes, France,Unite de Recherche Materiaux Procedes et Environnement, Universite M'hamed Bougara, Boumerdes, Algeria;

    Universite de Rennes 1, Institut des Sciences Chimiques de Rennes (UMR CNRS 6226), 263 Avenue du General Leclerc, CS 74205, 35042 Rennes, France;

    Universite de Rennes 1, Institut des Sciences Chimiques de Rennes (UMR CNRS 6226), 263 Avenue du General Leclerc, CS 74205, 35042 Rennes, France;

    Unite de Recherche Materiaux Procedes et Environnement, Universite M'hamed Bougara, Boumerdes, Algeria;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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