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发展一种通过超分辨率激光诱导荧光测量扩展纳米通道中离子分布的测量技术。

Development of a measurement technique for ion distribution in an extended nanochannel by super-resolution-laser-induced fluorescence.

机构信息

Department of Applied Chemistry, School of Engineering, The University of Tokyo, Tokyo, Japan.

出版信息

Anal Chem. 2011 Nov 1;83(21):8152-7. doi: 10.1021/ac201654r. Epub 2011 Oct 7.

Abstract

Ion behavior confined in extended nanospace (10(1)-10(3) nm) is important for nanofluidics and nanochemistry with dominant surface effects. In this paper, we developed a new measurement technique of ion distribution in the nanochannel by super-resolution-laser-induced fluorescence. Stimulated emission depletion microscopy was used to achieve a spatial resolution of 87 nm higher than the diffraction limit. Fluorescein was used for ratiometric measurement of pH with two excitation wavelengths. The pH profile in a 2D nanochannel of 410 nm width and 405 nm depth was successfully measured at an uncertainty of 0.05. The excess protons, showing lower pH than the bulk, nonuniformly distributed in the nanochannel to cancel the negative charge of glass wall, especially when the electric double layer is thick compared to the channel size. The present study first revealed the ion distribution near the surface or in the nanochannel, which is directly related to the electric double layer. In addition, the obtained proton distribution is important to understand the nanoscale water structure between single molecules and continuum phase. This technique will greatly contribute to understanding the basic science in nanoscale and interfacial dynamics, which are strongly required to develop novel miniaturized systems for biochemical analysis and further applications.

摘要

离子在扩展纳米空间(10(1)-10(3)nm)中的行为对于纳流控学和表面效应占主导地位的纳米化学非常重要。在本文中,我们开发了一种新的测量技术,通过超分辨激光诱导荧光来测量纳米通道中的离子分布。受激发射损耗显微镜用于实现 87nm 的空间分辨率,高于衍射极限。荧光素用于两个激发波长的 pH 值比色测量。在不确定度为 0.05 的情况下,成功测量了宽度为 410nm、深度为 405nm 的 2D 纳米通道中的 pH 分布。过量的质子,表现出比本体更低的 pH 值,在纳米通道中不均匀分布以抵消玻璃壁的负电荷,特别是当双电层相对于通道尺寸较厚时。本研究首次揭示了表面附近或纳米通道内的离子分布,这与双电层直接相关。此外,所获得的质子分布对于理解单分子和连续相之间的纳米尺度水结构非常重要。这项技术将极大地有助于理解纳米尺度和界面动力学的基础科学,这对于开发用于生化分析和进一步应用的新型小型化系统是非常需要的。

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