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首页> 外文期刊>Advanced Functional Materials >Atomic Layer Deposition of Conductive Coatings on Cotton, Paper, and Synthetic Fibers: Conductivity Analysis and Functional Chemical Sensing Using 'All-Fiber' Capacitors
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Atomic Layer Deposition of Conductive Coatings on Cotton, Paper, and Synthetic Fibers: Conductivity Analysis and Functional Chemical Sensing Using 'All-Fiber' Capacitors

机译:棉,纸和合成纤维上导电涂层的原子层沉积:使用“全纤维”电容器的电导率分析和功能化学传感

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摘要

Conductive coatings on complex fibrous systems are attracting interest for new electronic and other functional systems. Obtaining a quantitative conductivity value for complex surface coatings is often difficult. This work describes a procedure to quantify the effective electrical conductivity of conductive coatings on non-conductive fibrous networks. By applying a normal force orthogonal to the current and field direction, fiber/fiber contact is improved and consistent conductance values can be measured. Nylon fibers coated with an electroless silver plating shows effective conductivity up to 1950 S cm"1, and quartz fibers coated with tungsten by atomic layer deposition (ALD) show values up to -1150 S cm~-1. Cotton fibers and paper coated with a range of ZnO film thicknesses by ALD show effective conductivity of up to 24 S cm ' under applied normal force, and conductivity scaled as expected with film coating thickness. Furthermore, we use the conductive coatings to produce an "all-fiber" metal-insulator-metal capacitor that functions as a liquid chemical sensor. The ability to reliably analyze the effective conductivity of coatings on complex fiber systems will be important to design and improve performance of similar devices and other electronic textiles structures.
机译:复杂纤维系统上的导电涂层吸引了新的电子和其他功能系统的兴趣。通常很难获得复杂表面涂层的定量电导率值。这项工作描述了一种量化非导电纤维网络上导电涂层有效电导率的程序。通过施加与电流和电场方向正交的法向力,可以改善光纤之间的接触,并可以测量一致的电导值。涂有化学镀银的尼龙纤维显示出高达1950 S cm-1的有效电导率,而通过原子层沉积(ALD)涂有钨的石英纤维显示出高达-1150 S cm〜-1的值。通过ALD进行的一系列ZnO膜厚度显示,在施加法向力的情况下有效电导率高达24 S cm',并且电导率随膜涂层厚度的变化而按比例缩放。此外,我们使用导电涂层生产“全纤维”金属用作液体化学传感器的绝缘体-金属电容器,能够可靠地分析复杂纤维系统上涂层的有效电导率的能力,对于设计和改善类似设备和其他电子纺织品结构的性能至关重要。

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  • 来源
    《Advanced Functional Materials》 |2011年第11期|p.1993-2002|共10页
  • 作者单位

    Department of Textile Engineering, Chemistry and ScienceNorth Carolina State University Raleigh, North Carolina 27695 USA;

    Department of Chemical and Biomolecular Engineering North Carolina State University Raleigh, North Carolina 27695, USA;

    Department of Chemical and Biomolecular Engineering North Carolina State University Raleigh, North Carolina 27695, USA;

    Department of Chemical and Biomolecular Engineering North Carolina State University Raleigh, North Carolina 27695, USA;

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