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Ultrahigh stable laminar graphene membranes for effective ionic and molecular nanofiltration with a machine learning-assisted study

机译:超高稳定层状石墨烯膜,通过机器学习辅助研究实现有效的离子和分子纳滤

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Graphene oxide (GO) membranes have gained great attention for water purification due to the formation of stacked nanosheets giving nanocapillary channels. Unlike graphene, the interlayer spacing of GO membranes gets readily expanded in aqueous solution due to their high oxygen content, resulting in poor ion rejection. Herein, we prepared ultralow oxygen-containing graphene (∼1 at) via facile liquid-phase exfoliation which was formed as membrane laminates. The graphene membranes exhibited ultrahigh stability with no observed swelling or deformation of the laminar structure when kept in water, aqueous salt solutions, and various pH solutions for over one week. The membranes with a high degree of tortuous nanocapillary channels can efficiently reject the ions found in seawater as well as various charged dye molecules. This indicates that the graphene membranes exhibited ionic and molecular sieving properties due to the effect of size exclusion obtained from the narrow nanocapillary channel and electrostatic repulsion from negatively charged graphene nanosheets. Moreover, we also demonstrated machine learning to gain insights into the membrane performance, which allowed us to obtain membrane optimization as a model for water purification technology.
机译:石墨烯氧化物(去)膜得到了极大的支持水净化由于注意力堆叠nanosheets给的形成nanocapillary频道。去膜的层间间距变得容易扩大在水溶液由于其高氧含量,导致可怜的离子排斥。在此,我们准备超低含氧石墨烯(1∼%)通过温和的液相表皮脱落形成膜层压制品。没有观察到的肿胀或超高稳定当在层状结构的变形水,水盐的解决方案,以及各种pH值解决方案在一个星期。高度的曲折nanocapillary频道可以有效地拒绝海水中的离子以及各种染料分子。表明石墨烯膜表现出由于离子和分子筛选属性效应的大小从狭窄的获得的排斥nanocapillary通道和静电斥力从nanosheets带负电荷的石墨烯。此外,我们还演示了机器学习获得洞察膜性能,这允许我们获得膜优化作为一个水净化技术的模型。

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