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首页> 外文期刊>Nature nanotechnology >Anomalous ion transport in 2-nm hydrophilic nanochannels
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Anomalous ion transport in 2-nm hydrophilic nanochannels

机译:2 nm亲水性纳米通道中的异常离子传输

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摘要

Transmembrane proteins often contain nanoscale channels through which ions and molecules can pass either passively (by diffusion) or actively (by means of forced transport). These proteins play important roles in selective mass transport and electrical signalling in many biological processes. Fluidic nanochannels that are 1-2 nm in diameter act as functional mimics of protein channels, and have been used to explore the transport of ions and molecules in confined liquids~(1-3). Here we report ion transport in 2-nm-deep nanochannels fabricated by standard semiconductor manufacturing processes. Ion transport in these nanochannels is dominated by surface charge until the ion concentration exceeds 100 mM. At low concentrations, proton mobility increases by a factor of four over the bulk value, possibly due to overlapping of the hydrogen-bonding network of the two hydration layers adjacent to the hydrophilic surfaces. The mobility of K~+/Na~+ ions also increases as the bulk concentration decreases, although the reasons for this are not completely understood.
机译:跨膜蛋白通常包含纳米级通道,离子和分子可以通过这些通道被动地(通过扩散)或主动地(通过强制运输)通过。这些蛋白质在许多生物过程中的选择性传质和电信号传导中起重要作用。直径为1-2 nm的流体纳米通道可作为蛋白质通道的功能模拟物,并已被用于探索离子和分子在受限液体中的传输(1-3)。在这里,我们报告通过标准半导体制造工艺制造的2纳米深纳米通道中的离子传输。这些纳米通道中的离子传输受表面电荷支配,直到离子浓度超过100 mM。在低浓度下,质子迁移率比整体值增加了四倍,这可能是由于与亲水表面相邻的两个水合层的氢键网络重叠造成的。随着体积浓度的降低,K〜+ / Na〜+离子的迁移率也会增加,尽管其原因尚不完全清楚。

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