电应力下银纳米线透明导体的模级风化降解

Chiao-Chi Lin, Hung-Shuo Chang
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引用次数: 2

摘要

模块级风化试验对于扩大银纳米线的应用至关重要。本文在伪模组中对AgNWs施加电应力,并进行了老化试验。AgNW网络在电应力下的退化取决于UVA暴露、温度和湿度等环境条件。纳米线密度是影响AgNW透明导体使用寿命的关键参数。AgNW网在直流电应力老化试验中的破坏机制包括局部焦耳加热、电迁移和光致化学腐蚀。高温下直流电应力和UVA暴露的协同效应导致AgNW网络中垂直于电流的窄断线。随着风化作用的进行,断裂线的扩展导致了电导率的破坏。在电应力下,在低温(本研究为40℃)和潮湿空气中UVA暴露的条件下,没有出现电导率击穿,因为AgNWs的主要降解机制是表面硫化。此外,在66.4天的测试中,在40°C的黑暗条件下,仅电应力的应力源没有降解。室外现场试验结果验证了日热循环和季节湿度的重要性。在电应力作用下,室外试验破坏机理与室内试验相同。此外,高湿度加上室外的紫外线和高温会显著破坏AgNWs的盖层剂,导致银的形态重新配置。为进一步了解AgNW网络在室外应用中的电气故障机理,将对AgNW网络室外现场试验进行系统、长期的调查研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Degradation of Silver Nanowire Transparent Conductors by Module-level Weathering under Electrical Stress
Module-level weathering tests are essential to widen the applications of silver nanowires (AgNWs). In this work, electrical stress is applied to AgNWs in pseudo-module and weathering tests are conducted. The degradation of AgNW network under electrical stress depends on the environmental conditions such as UVA exposure, temperature, and humidity. Nanowire density is a crucial parameter of AgNW network to prolong lifespan of the AgNW transparent conductor (TC). The failure mechanism of AgNW network under weathering test with DC electrical stress includes localized Joule heating, electromigration and photo-induced chemical corrosion. Synergistic effect of DC electrical stress and UVA exposure at elevated temperature results in a narrow break line in the AgNW network perpendicular to the current flow. The conductivity breakdown is caused due to the propagation of the break line as weathering goes on. Under electrical stress, there is no electrical conductivity breakdown in the conditions of UVA exposure at low temperature (40°C in this study) and humid air, because the dominant mechanism of degradation is surface sulfidation of AgNWs. In addition, in a 66.4-day test, there is no degradation with the stressor of electrical stress alone in 40°C dark conditions. Outdoor field test results demonstrate the significance of daily thermal cycle and seasonal humidity. With electrical stress, the failure mechanism of outdoor test is the same as indoor accelerated weathering. Moreover, high humidity coupled with UV and high temperature in the outdoors significantly impair the capping agent of AgNWs, resulting in re-configured morphologies of silver. Systematical and long-term investigation of the outdoor field test of AgNW TCs will be conducted to gain more understanding to the electrical failure mechanism of AgNW network in the outdoor applications.
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