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Thermally Induced Percolational Transition and Thermal Stability of Silver Nanowire Networks Studied by THz Spectroscopy

机译:太赫兹光谱研究银纳米线网络的热诱导介电跃迁和热稳定性

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摘要

Great demand toward flexible optoelectronic devices finds metal nanowires (NWs) the most promising flexible transparent conducting material with superior mechanical properties. However, ultrathin metal nanowires suffer from relatively poor thermal stability and sheet conductance, attributed to the poor adhesivity of the ohmic contact between nanowires. Thermal heating and annealing at 200 degrees C increase the conductivity of the metal network, but prolonged annealing accelerates the breakage of NWs near the NW junction and the formation of Ag droplets. In this study, the thermal stability of silver NW (AgNW) films is investigated through the in situ measurements of sheet resistance and terahertz (THz) conductivity. With the improved ohmic contact at the NW junctions by heating, a characteristic transition from the subpercolative to percolative network is observed by in situ THz spectroscopy. It is found that stamp-transferred graphene incorporated with a near-percolative AgNW network can dramatically enhance the thermal stability of the grapheneAgNW (GAgNW) hybrid film. In both in situ measurements, little variation of physical parameters in GAgNW film is observed for up to 3 h of annealing. The presented results offer the potential of graphene-incorporated metal nanowire film as a highly conductive electrode that also has high thermal stability and excellent transparency for next-generation electronics and optoelectronics on flexible substrates.
机译:对柔性光电器件的巨大需求发现金属纳米线(NWs)是具有优异机械性能的最有希望的柔性透明导电材料。然而,由于纳米线之间的欧姆接触的不良粘附性,超薄金属纳米线遭受相对较差的热稳定性和薄层电导率。在200摄氏度下进行加热和退火会增加金属网络的导电性,但是长时间退火会加速NW结附近的NW的破裂和Ag液滴的形成。在这项研究中,通过现场测量薄层电阻和太赫兹(THz)电导率来研究NW银(AgNW)薄膜的热稳定性。通过加热改善了NW结处的欧姆接触,通过原位THz光谱观察到了从过渗网络到渗流网络的特征跃迁。发现掺有近渗AgNW网络的图章转移石墨烯可以显着增强石墨烯AgNW(GAgNW)杂化膜的热稳定性。在两种原位测量中,在长达3小时的退火过程中,GAgNW膜的物理参数几乎没有变化。提出的结果提供了石墨烯结合的金属纳米线薄膜作为高导电性电极的潜力,该电极还具有很高的热稳定性和出色的透明性,适用于柔性基板上的下一代电子产品和光电产品。

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