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Laser Processed Silver Nanowire Network Transparent Electrodes for Novel Electronic Devices.

机译:用于新型电子设备的激光处理的银纳米线网络透明电极。

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摘要

Silver nanowire network transparent conducting layers are poised to make headway into a space previously dominated by transparent conducting oxides due to the promise of a flexible, scaleable, lab-atmosphere processable alternative. However, there are many challenges standing in the way between research scale use and consumer technology scale adaptation of this technology. In this thesis we will explore many, and overcome a few of these challenges. We will address the poor conductivity at the narrow nanowire-nanowire junction points in the network by developing a laser based process to weld nanowires together on a microscopic scale. We address the need for a comparative metric for transparent conductors in general, by taking a device level rather than a component level view of these layers. We also address the mechanical, physical, and thermal limitations to the silver nanowire networks by making composites from materials including a colorless polyimide and titania sol-gel. Additionally, we verify our findings by integrating these processes into devices. Studying a hybrid organic/inorganic heterojunction photovoltaic device we show the benefits of a laser processed electrode. Green phosphorescent organic light emitting diodes fabricated on a solution phase processed silver nanowire based electrode show favorable device metrics compared to a conductive oxide electrode based control. The work in this thesis is intended to push the adoption of silver nanowire networks to further allow new device architectures, and thereby new device applications.
机译:银纳米线网络透明导电层由于有望提供一种灵活,可缩放,可在实验室大气中加工的替代品而有望进入以前由透明导电氧化物所控制的空间。但是,在研究规模的使用和该技术的消费者技术规模的适应之间仍然存在许多挑战。在本文中,我们将探索许多挑战,并克服其中一些挑战。我们将通过开发基于激光的工艺以微观尺度将纳米线焊接在一起,解决网络中狭窄的纳米线-纳米线结点处的导电性差的问题。通常,通过采用这些层的设备级别而非组件级别的视图来满足对透明导体的比较度量的需求。我们还通过使用包括无色聚酰亚胺和二氧化钛溶胶-凝胶的材料制造复合材料来解决银纳米线网络的机械,物理和热限制。此外,我们通过将这些过程集成到设备中来验证我们的发现。研究混合有机/无机异质结光伏器件,我们展示了激光加工电极的好处。与基于导电氧化物电极的控制相比,在固溶相处理的基于银纳米线的电极上制造的绿色磷光有机发光二极管显示出良好的器件规格。本文的工作旨在推动银纳米线网络的采用,以进一步允许新的设备架构,从而实现新的设备应用。

著录项

  • 作者

    Spechler, Joshua Allen.;

  • 作者单位

    Princeton University.;

  • 授予单位 Princeton University.;
  • 学科 Materials science.;Nanotechnology.;Mechanical engineering.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 139 p.
  • 总页数 139
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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