Kaikanov Marat, Amanzhulov Bauyrzhan, Demeuova Gulzat, Akhtanova Gulnur, Bozheyev Farabi, Kemelbay Aidar, Tikhonov Alexander
Physics Department, School of Sciences and Humanities, Nazarbayev University, Nur-Sultan 010000, Kazakhstan.
National Laboratory Astana, Nazarbayev University, Nur-Sultan 010000, Kazakhstan.
Nanomaterials (Basel). 2020 Oct 29;10(11):2153. doi: 10.3390/nano10112153.
In this report, an improvement of the electrical performance and stability of a silver nanowire (AgNW) transparent conductive coating (TCC) is presented. The TCC stability against oxidation is achieved by coating the AgNWs with a polyvinyl alcohol (PVA) layer. As a result, a UV/ozone treatment has not affected the morphology of the AgNWs network and the PVA protection layer, unlike non-passivated TCC, which showed severe degradation. The irradiation with an intense pulsed ion beam (IPIB) of 200 ns duration and a current density of 30 A/cm is used to increase the conductivity of the AgNWs network without degradation of the temperature-resistant PVA coating and decrease in the TCC transparency. Simulations have shown that, although the sample temperature reaches high values, the ultra-high heating and cooling rates, together with local annealing, enable the delicate thermal processing. The developed coatings and irradiation strategies are used to prepare and enhance the performance of AgNW-based transparent heaters. A single irradiation pulse increases the operating temperature of the transparent heater from 92 to 160 °C at a technologically relevant voltage of 12 V. The proposed technique shows a great promise in super-fast, low-temperature annealing of devices with temperature-sensitive components.
在本报告中,展示了一种银纳米线(AgNW)透明导电涂层(TCC)的电学性能和稳定性的改进。通过用聚乙烯醇(PVA)层涂覆AgNW来实现TCC抗氧化稳定性。结果,与未钝化的TCC显示出严重降解不同,紫外线/臭氧处理并未影响AgNW网络和PVA保护层的形态。使用持续时间为200 ns且电流密度为30 A/cm²的强脉冲离子束(IPIB)进行辐照,以提高AgNW网络的导电性,同时不降低耐温PVA涂层性能以及TCC透明度。模拟表明,尽管样品温度达到很高的值,但超高的加热和冷却速率以及局部退火能够实现精细的热处理。所开发的涂层和辐照策略用于制备和增强基于AgNW的透明加热器的性能。在12 V的技术相关电压下,单个辐照脉冲可将透明加热器的工作温度从92℃提高到160℃。所提出的技术在对具有温度敏感组件的器件进行超快速、低温退火方面显示出巨大潜力。