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Strong Differential Monovalent Anion Selectivity in Narrow Diameter Carbon Nanotube Porins

机译:窄直径碳纳米管孔隙中的强差分单价阴离子选择性

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Inner pores of carbon nanotubes combine extremely fast water transport and ion selectivity that could potentially be useful for high-performance water desalination and separation applications. We used dye-quenching halide assays and stopped-flow spectrometry to determine intrinsic permeability of three small monovalent halide anions (chloride, bromide, iodide) and one pseudohalide anion (thiocyanate) through narrow 0.8 nm diameter carbon nanotube porins (CNTPs). These measurements revealed unexpectedly strong differential ion selectivity with permeabilities of different ions varying by up to 2 orders of magnitude. Removal of the negative charge from the nanotube entrance increased anion permeability by only a relatively small factor, indicating that electrostatic repulsion was not a major determinant of CNTP selectivity. First principle molecular dynamics simulations revealed that the origin of this strong differential ion selectivity is partial dehydration of anions upon entry into the narrow CNTP channels.
机译:碳纳米管的内部孔结合了极快的水运输和离子选择性,可能对高性能水脱盐和分离应用有可能。我们使用染料淬火卤化物测定和停止流动光谱法以通过窄的0.8nm直径的碳纳米管孔(CNTPS)来确定三个小一价卤化卤离子(氯化物,溴化物,碘化物)和一种伪卤化物阴离子(硫氰酸酯)的内在渗透性。这些测量显示出意外的强差分离子选择性,不同离子的渗透率变化多达2个数量级。从纳米管入射的去除仅通过相对较小的因素增加阴离子渗透性,表明静电排斥不是CNTP选择性的主要决定因素。第一原理分子动力学模拟显示,这种强差分离子选择性的起源是进入窄CNTP通道时阴离子的部分脱水。

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