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Synthesis of 10 nm Ag nanoparticle polymer composite pastes for low temperature production of high conductivity films

机译:用于低温生产高电导率薄膜的10 nm Ag纳米颗粒聚合物复合浆料的合成

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摘要

The conversion of silver nanoparticle (NP) paste films into highly conductive films at low sintering temperature is an important requirement for the developing areas of additive fabrication and printed electronics. Ag NPs with a diameter of ~10 nm were prepared via an improved chemical process to produce viscous paste with a high wt%. The paste consisted of as-prepared Ag NP and an organic vehicle of ethylcellulose that was deposited on glass and Si substrates using a contact lithographic technique. The morphology and conductivity of the imprinted paste film were measured as a function of sintering temperature, sintering time and the percentage ratio of Ag NP and ethylcellulose. The morphology and conductivity were examined using scanning electron microscopy (SEM) and a two-point probe electrical conductivity measurement. The results show that the imprinted films were efficiently converted into conducting states when exposed to sintering temperature in the range of 200-240℃, this temperature is lower than the previously reported values for Ag paste.
机译:在低烧结温度下将银纳米颗粒(NP)糊剂薄膜转变为高导电性薄膜是增材制造和印刷电子领域发展的重要要求。通过改进的化学工艺制备了直径约为10 nm的Ag NP,以生产出高wt%的粘性糊状物。糊剂由准备好的Ag NP和乙基纤维素的有机载体组成,该载体使用接触光刻技术沉积在玻璃和Si基板上。测量压印糊状膜的形态和电导率随烧结温度,烧结时间和Ag NP与乙基纤维素的百分比的关系。使用扫描电子显微镜(SEM)和两点探针电导率测量来检查形态和电导率。结果表明,当暴露在200-240℃的烧结温度下时,压印膜可以有效地转变成导电状态,该温度低于先前报道的Ag糊剂的温度。

著录项

  • 来源
    《Applied Surface Science》 |2010年第3期|p.680-685|共6页
  • 作者

    PingAn Hu; William ONeil; Qin Hu;

  • 作者单位

    Centre for Industrial Photonics, Institute for Manufacturing, Department of Engineering, University of Cambridge, Mill Lane, Cambridge CB2 1RX, UK;

    Centre for Industrial Photonics, Institute for Manufacturing, Department of Engineering, University of Cambridge, Mill Lane, Cambridge CB2 1RX, UK;

    Centre for Industrial Photonics, Institute for Manufacturing, Department of Engineering, University of Cambridge, Mill Lane, Cambridge CB2 1RX, UK;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    nanoparticle; conductivity; film; printing; Ag;

    机译:纳米粒子电导率电影;印刷银;
  • 入库时间 2022-08-18 03:07:33

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