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Rapid prototyping of all-solution-processed multi-lengthscale electrodes using polymer-induced thin film wrinkling

机译:使用聚合物诱导的薄膜起皱快速对所有溶液处理的多尺度电极进行原型制作

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摘要

Three-dimensional electrodes that are controllable over multiple lengthscales are very important for use in bioanalytical systems that integrate solid-phase devices with solution-phase samples. Here we present a fabrication method based on all-solution-processing and thin film wrinkling using smart polymers that is ideal for rapid prototyping of tunable three-dimensional electrodes and is extendable to large volume manufacturing. Although all-solution-processing is an attractive alternative to vapor-based techniques for low-cost manufacturing of electrodes, it often results in films suffering from low conductivity and poor substrate adhesion. These limitations are addressed here by using a smart polymer to create a conformal layer of overlapping wrinkles on the substrate to shorten the current path and embed the conductor onto the polymer layer. The structural evolution of these wrinkled electrodes, deposited by electroless deposition onto a nanoparticle seed layer, is studied at varying deposition times to understand its effects on structural parameters such as porosity, wrinkle wavelength and height. Furthermore, the effect of structural parameters on functional properties such as electro-active surface area and surface-enhanced Raman scattering is investigated. It is found that wrinkling of electroless-deposited thin films can be used to reduce sheet resistance, increase surface area, and enhance the surface-enhanced Raman scattering signal.
机译:可在多个长度尺度上控制的三维电极对于将固相装置与溶液相样品整合在一起的生物分析系统非常重要。在这里,我们介绍了一种基于全溶液处理和使用智能聚合物的薄膜起皱的制造方法,该方法非常适合可调谐三维电极的快速原型制作,并且可扩展至大批量制造。尽管全溶液处理是基于蒸气的技术的低成本制造方法的一种有吸引力的替代方法,但它通常会导致膜的电导率低和基材附着力差。这些限制在这里通过使用智能聚合物在基板上创建重叠褶皱的保形层来缩短电流路径并将导体嵌入聚合物层来解决。通过在不同的沉积时间研究通过化学沉积沉积在纳米粒子种子层上的这些起皱电极的结构演变,以了解其对结构参数(如孔隙率,起皱波长和高度)的影响。此外,研究了结构参数对功能特性如电活性表面积和表面增强拉曼散射的影响。发现化学沉积薄膜的起皱可用于减小薄层电阻,增加表面积并增强表面增强的拉曼散射信号。

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