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The Joule heating problem in silver nanowire transparent electrodes

机译:银纳米线透明电极中的焦耳加热问题

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摘要

Silver nanowire transparent electrodes have shown considerable potential to replace conventional transparent conductive materials. However, in this report we show that Joule heating is a unique and serious problem with these electrodes. When conducting current densities encountered in organic solar cells, the average surface temperature of indium tin oxide (ITO) and silver nanowire electrodes, both with sheet resistances of 60 ohms/square, remains below 35 degrees C. However, in contrast to ITO, the temperature in the nanowire electrode is very non-uniform, with some localized points reaching temperatures above 250 degrees C. These hotspots accelerate nanowire degradation, leading to electrode failure after 5 days of continuous current flow. We show that graphene, a commonly used passivation layer for these electrodes, slows nanowire degradation and creates a more uniform surface temperature under current flow. However, the graphene does not prevent Joule heating in the nanowires and local points of high temperature ultimately shift the failure mechanism from nanowire degradation to melting of the underlying plastic substrate. In this paper, surface temperature mapping, lifetime testing under current flow, post-mortem analysis, and modelling illuminate the behaviour and failure mechanisms of nanowires under extended current flow and provide guidelines for managing Joule heating.
机译:银纳米线的透明电极已经显示相当大的潜力,以取代以往的透明导电材料。然而,在本报告中,我们表明,焦耳热与这些电极的独特的严重问题。当进行电流密度在有机太阳能电池中遇到,氧化铟锡的平均表面温度(ITO)和银纳米线电极,都与60欧姆/平方的薄层电阻,保持低于35℃但是,在对比ITO,所述在纳米线电极温度是非常不均匀的,具有一些局部点到达温度高于250℃,这些热点加速纳米线降解,导致电极失效后连续电流流动的5天。我们表明,石墨烯,用于这些电极通常使用的钝化层,纳米线减慢降解和产生的电流流动下的更均匀的表面温度。然而,石墨烯不阻止在纳米线和高温的局部点的焦耳加热最终从纳米线降解失效机理转移到底层塑料基材的熔化。在本文中,表面温度映射,寿命的电流流动,验尸分析下测试,以及扩展电流流动下建模照射纳米线的行为和失效机制,并提供用于管理焦耳加热的准则。

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