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Differential-Concentration Scanning Ion Conductance Microscopy

机译:差分浓度扫描离子电导显微镜

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src="http://pubs.acs.org/appl/literatum/publisher/achs/journals/content/ancham/2017/ancham.2017.89.issue-22/acs.analchem.7b03543/20171115/images/medium/ac-2017-03543c_0007.gif">Scanning ion conductance microscopy (SICM) is a nanopipette-based scanning probe microscopy technique that utilizes the ionic current flowing between an electrode inserted inside a nanopipette probe containing electrolyte solution and a second electrode placed in a bulk electrolyte bath, to provide information on a substrate of interest. For most applications to date, the composition and concentration of the electrolyte inside and outside the nanopipette is identical, but it is shown herein that it can be very beneficial to lift this restriction. In particular, an ionic concentration gradient at the end of the nanopipette, generates an ionic current with a greatly reduced electric field strength, with particular benefits for live cell imaging. This differential concentration mode of SICM (ΔC-SICM) also enhances surface charge measurements and provides a new way to carry out reaction mapping measurements at surfaces using the tip for simultaneous delivery and sensing of the reaction rate. Comprehensive finite element method (FEM) modeling has been undertaken to enhance understanding of SICM as an electrochemical cell and to enable the interpretation and optimization of experiments. It is shown that electroosmotic flow (EOF) has much more influence on the nanopipette response in the ΔC-SICM configuration compared to standard SICM modes. The general model presented advances previous treatments, and it provides a framework for quantitative SICM studies.
机译:src =“http://pubs.acs.org/appl/literatum/publisher/achs/journals/content/ancham/2017/acham.2017.89.issue-22/acs.analchem.7b03543/20171115/images/medium / CAC_0007-03543C_0007.GIF“> SCANNING离子电导显微镜(SICM)是基于纳米纤维的扫描探针显微镜技术,其利用在含有电解质溶液的纳米纤维探针内部的电极之间流动的离子电流和放置在a中的第二电极。散装电解质浴,提供有关感兴趣的基材的信息。对于迄今为止的大多数应用,纳米阀内外电解质的组成和浓度是相同的,但在此示出的情况下,它可以非常有利于提升这种限制。特别地,纳米纤维液的末端处的离子浓度梯度产生具有大大降低的电场强度的离子电流,具有特定于活细胞成像的益处。这种SICM(ΔC-SICM)的差分浓度模式还增强了表面电荷测量,并提供了一种新的方式,用于使用尖端在表面上进行反应映射测量,用于同时为递送和感测反应速率。已经进行了综合有限元方法(FEM)建模,以提高SICM作为电化学细胞的理解,并实现实验的解释和优化。结果表明,与标准SICM模式相比,电渗流量(EOF)对ΔC-SICM配置中的纳米纤维响应的影响得多。一般模型提出了先前的治疗,并为定量SICM研究提供了框架。

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  • 来源
    《Analytical chemistry》 |2017年第22期|共8页
  • 作者单位

    Department of Chemistry MOAC Doctoral Training Centre School of Life Sciences University of Warwick Coventry CV4 7AL United Kingdom;

    Department of Chemistry MOAC Doctoral Training Centre School of Life Sciences University of Warwick Coventry CV4 7AL United Kingdom;

    Department of Chemistry MOAC Doctoral Training Centre School of Life Sciences University of Warwick Coventry CV4 7AL United Kingdom;

    Department of Chemistry MOAC Doctoral Training Centre School of Life Sciences University of Warwick Coventry CV4 7AL United Kingdom;

    Department of Chemistry MOAC Doctoral Training Centre School of Life Sciences University of Warwick Coventry CV4 7AL United Kingdom;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
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