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Ion transport controlled by nanoparticle-functionalized membranes

机译:纳米粒子功能化膜控制离子传输

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摘要

From proton exchange membranes in fuel cells to ion channels in biological membranes, the well-specified control of ionic interactions in confined geometries profoundly influences the transport and selectivity of porous materials. Here we outline a versatile new approach to control a membrane's electrostatic interactions with ions by depositing ligand-coated nanoparticles around the pore entrances. Leveraging the flexibility and control by which ligated nanoparticles can be synthesized, we demonstrate how ligand terminal groups such as methyl, carboxyl and amine can be used to tune the membrane charge density and control ion transport. Further functionality, exploiting the ligands as binding sites, is demonstrated for sulfonate groups resulting in an enhancement of the membrane charge density. We then extend these results to smaller dimensions by systematically varying the underlying pore diameter. As a whole, these results outline a previously unexplored method for the nanoparticle functionalization of membranes using ligated nanoparticles to control ion transport.
机译:从燃料电池中的质子交换膜到生物膜中的离子通道,对特定几何形状中受限的离子相互作用的严格控制会深刻影响多孔材料的运输和选择性。在这里,我们概述了一种通用的新方法,可通过在孔口周围沉积配体涂层的纳米颗粒来控制膜与离子的静电相互作用。利用可合成连接的纳米粒子的灵活性和控制力,我们证明了配体端基(例如甲基,羧基和胺)如何可用于调节膜电荷密度和控制离子迁移。证明了利用配体作为结合位点的其他功能性的磺酸盐基团导致膜电荷密度的提高。然后,我们通过系统地更改基本孔径将这些结果扩展到较小的尺寸。总体而言,这些结果概述了使用连接的纳米粒子控制离子迁移的膜纳米粒子功能化方法的一种先前尚未探索的方法。

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