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首页> 外文期刊>Desalination: The International Journal on the Science and Technology of Desalting and Water Purification >Layer-by-layer assembly of graphene oxide nanoplatelets embedded desalination membranes with improved chlorine resistance
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Layer-by-layer assembly of graphene oxide nanoplatelets embedded desalination membranes with improved chlorine resistance

机译:逐层氧化石墨烯纳米型嵌入式脱盐膜的层组件,具有改善的氯抗性

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摘要

Membranes with polyamide thin film active layer are used in reverse osmosis-based water desalination applications. Incorporation of graphene oxide nanoplatelets (GONPs) in the polyamide layer can alter the surface characteristics, permeability, selectivity, and can enhance the chlorine resistance of these membranes. In this study, a layer-by-layer (LbL) synthesis technique has been developed for embedding GONPs in the polyamide layer. Polyamide layers with GONPs were synthesized in various sequences, such as alternating layers of GONPs and polyamide, and GONPs on top of the polyamide layer. Incorporation of GONPs resulted in an increase of surface hydrophilicity as captured by the change of the water contact angle. Water flux and salt rejection properties of synthesized membranes have been investigated by using a dead-end cell. The salt rejection ability of membranes increased slightly with the incorporation of GONPs, while the water flux found to be similar to that observed for the pristine membranes without GONPs. Upon exposure to chlorine, GONPs embedded membranes retained salt rejection performance better than the pristine membranes. Our approach provides an alternative framework to incorporate nanoparticles in thin film membranes in a precise manner and to investigate the effect of such nanoparticles on the membrane performances.
机译:具有聚酰胺薄膜活性层的膜用于反向渗透基水脱盐应用。将石墨烯纳米片(GONP)掺入聚酰胺层中可以改变表面特征,渗透性,选择性,并可增强这些膜的氯抗性。在该研究中,已经开发了一种逐层(LBL)合成技术,用于在聚酰胺层中嵌入含量。用聚酰胺层的聚酰胺层在各种序列中合成,例如月球和聚酰胺的交替层,并且在聚酰胺层顶部的转移剂。掺入月球导致表面亲水性的增加,因为通过水接触角的变化捕获。通过使用死端细胞研究了合成膜的水通量和盐排斥性能。膜的盐抑制能力掺入掺入掺入的掺入时,而发现的水通量与未在没有大量的原始膜中观察到的水通量。在接触氯后,嵌入膜的嵌入式膜比原始膜更好地保留盐排斥性能。我们的方法提供了一种替代框架,以精确方式在薄膜膜中纳入纳米颗粒,并研究这种纳米颗粒对膜性能的影响。

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