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Unique selectivity trends of highly permeable PAP[5] water channel membranes

机译:具有高渗透性毒率的独特选择性趋势[5]水通道膜

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摘要

Artificial water channels are a practical alternative to biological water channels for achieving exceptional water permeability and selectivity in a stable and scalable architecture. However, channel-based membrane fabrication faces critical barriers such as: (1) increasing pore density to achieve measurable gains in permeability while maintaining selectivity, and (2) scale-up to practical membrane sizes for applications. Recently, we proposed a technique to prepare channel-based membranes using peptide-appended pillar[5]arene (PAP[5]) artificial water channels, addressing the above challenges. These multi-layered PAP[5] membranes (ML-PAP[5]) showed significantly improved water permeability compared to commercial membranes with similar molecular weight cut-offs. However, due to the distinctive pore structure of water channels and the layer-by-layer architecture of the membrane, the separation behavior is unique and was still not fully understood. In this paper, two unique selectivity trends of ML-PAP[5] membranes are discussed from the perspectives of channel geometry, ion exclusion, and linear molecule transport.
机译:人造水通道是生物水通道的实用替代方案,用于在稳定和可扩展的架构中实现出色的饮水能力和选择性。然而,基于通道的膜制造面向临界屏障,例如:(1)增加孔密度,以在保持选择性的同时实现可渗透性的可测量的增益,以及(2)对应用的实用膜尺寸的比例缩放。最近,我们提出了一种使用肽屈服柱[5]芳烃(PAP [5])人工水通道制备基于通道的膜的技术,用于解决上述挑战。这些多层PAP [5]膜(ML-PAP [5])显示与具有相似分子量截止的商业膜相比显着提高的水渗透性。然而,由于孔通道的孔隙结构和膜的层型架构的孔隙结构,分离行为是独特的,仍然没有完全理解。本文从通道几何形状,离子排除和线性分子运输的视角讨论了ML-PAP [5]膜的两个独特选择性趋势。

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