首页> 外文会议>Nanowires and nanotubes - synthesis, properties, devices and energy applications of one-dimensional materials >Fabrication of Transparent Conductive Thin Film Electrodes Based on Ag Nanowire on Transparent Substrates Using the Spray Method for Photovoltaic Applications
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Fabrication of Transparent Conductive Thin Film Electrodes Based on Ag Nanowire on Transparent Substrates Using the Spray Method for Photovoltaic Applications

机译:光伏应用喷涂法在透明基板上制备基于银纳米线的透明导电薄膜电极

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摘要

Materials with a remarkable combination of high electrical conductivity as well as optical transparency are playing a key role for opto-electronic devices. In addition to these specific electro-optical properties, transparent conductive materials should, for many applications, be lightweight, flexible, low-cost, non toxic and compatible with mass production techniques. In these regards, the use of Ag nanowire (Ag NW) networks appears to be a promising approach. In this study, Ag NW electrodes were fabricated by a novel spray injection method. The number of pulses was varied resulting in different network morphologies. Coatings were systematically characterised structurally, electrically and optically via SEM, four-point probe measurements and spectrophotometry, respectively. Semi uniform layers of nanowires with large haze coefficients have been obtained over large areas. Thermal annealing was shown to increase the nanowire film conductance resulting in 16 Ω/sq surface resistance and up to 73% maximal total transmittance. Films showed average optical transparencies superior to that of ITO over the 250-2500 nm range. Finally, encapsulation of Ag NWs within a matrix of ZnO nanoparticles greatly enhanced the thermal stability of these networks.
机译:具有高电导率和光学透明度的显着组合的材料在光电设备中起着关键作用。除了这些特定的电光特性之外,对于许多应用而言,透明导电材料还应该是轻质,柔性,低成本,无毒的并且与批量生产技术兼容。在这些方面,使用银纳米线(Ag NW)网络似乎是一种有前途的方法。在这项研究中,Ag NW电极是通过一种新型的喷射注入方法制造的。脉冲数变化,导致网络形态不同。分别通过SEM,四点探针测量和分光光度法对涂层进行了结构,电和光学方面的表征。在大面积上已经获得了具有大雾度系数的纳米线的半均匀层。研究表明,热退火可以提高纳米线薄膜的电导率,从而导致16Ω/ sq的表面电阻和高达73%的最大总透光率。在250-2500 nm范围内,薄膜的平均光学透明度优于ITO。最后,将Ag NWs封装在ZnO纳米颗粒的基质中大大增强了这些网络的热稳定性。

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  • 来源
  • 会议地点 San Francisco CA(US);San Francisco CA(US);San Francisco CA(US)
  • 作者单位

    Laboratoire des Materiaux et du Genie Physique, CNRS - Grenoble INP, 3 parvis Louis Neel 38016 Grenoble, France;

    Laboratoire des Materiaux et du Genie Physique, CNRS - Grenoble INP, 3 parvis Louis Neel 38016 Grenoble, France,Laboratoire de Physique des Solides, Interfaces et Nanostructures- Departement de Physique, Universite de Liege - Allee du 6 Aout 17, B-4000 Liege, Belgique;

    Laboratoire des Materiaux et du Genie Physique, CNRS - Grenoble INP, 3 parvis Louis Neel 38016 Grenoble, France;

    Laboratoire des Materiaux et du Genie Physique, CNRS - Grenoble INP, 3 parvis Louis Neel 38016 Grenoble, France;

    Laboratoire des Materiaux et du Genie Physique, CNRS - Grenoble INP, 3 parvis Louis Neel 38016 Grenoble, France,Crystal Growth Center, Anna University - Chennai, 600025 India;

    Laboratoire des Materiaux et du Genie Physique, CNRS - Grenoble INP, 3 parvis Louis Neel 38016 Grenoble, France,Laboratoire de Science et Ingenierie des Materiaux et Precedes, CNRS - Grenoble INP, 1130 rue de la Piscine, 38402 Saint-Martin d'Heres, France;

    Laboratoire des Materiaux et du Genie Physique, CNRS - Grenoble INP, 3 parvis Louis Neel 38016 Grenoble, France;

    Laboratoire des Materiaux et du Genie Physique, CNRS - Grenoble INP, 3 parvis Louis Neel 38016 Grenoble, France;

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  • 入库时间 2022-08-26 14:19:37

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