Zhou Bing, Su Mengjie, Yang Daozheng, Han Gaojie, Feng Yuezhan, Wang Bo, Ma Jialu, Ma Jianmin, Liu Chuntai, Shen Changyu
Key Laboratory of Materials Processing and Mold Ministry of Education, National Engineering Research Center for Advanced Polymer Processing Technology, Zhengzhou University, Zhengzhou, Henan 450002, China.
National Key Laboratory of Human Factors Engineering, China Astronauts Research and Training Center, Beijing 100094, China.
ACS Appl Mater Interfaces. 2020 Sep 9;12(36):40859-40869. doi: 10.1021/acsami.0c09020. Epub 2020 Aug 28.
Transparent conductive film (TCF) is promising for optoelectronic instrument applications. However, designing a robust, stable, and flexible TCF that can shield electromagnetic waves and work in harsh conditions remains a challenge. Herein, a multifunctional and flexible TCF with effective electromagnetic interference shielding (EMI) performance and outstanding electro-photo-thermal effect is proposed by orderly coating TiCT MXene and a silver nanowire (AgNW) hybrid conductive network using a simple and scalable solution-processed method. Typically, the air-plasma-treated polycarbonate (PC) film was sequentially spray-coated with MXene and AgNW to construct a highly conductive network, which was transferred and partly embedded into an ultrathin poly(vinyl alcohol) (PVA) film using spin coating coupled with hot pressing to enhance the interfacial adhesion. The peeled MXene/AgNW-PVA TCF exhibits an optimal optical and electrical performance of sheet resistance 18.3 Ω/sq and transmittance 52.3%. As a consequence, the TCF reveals an effective EMI shielding efficiency of 32 dB in X-band with strong interfacial adhesion and satisfactory flexibility. Moreover, the high electrical conductivity and localized surface plasmon resonance (LSPR) effect of hybrid conductive network endow the TCF with low-voltage-driven Joule heating performance and excellent photothermal effect, respectively, which can ensure the normal functioning under extreme cold condition. In view of the comprehensive performance, this work offers new solutions for next-generation transparent EMI shielding challenges.
透明导电薄膜(TCF)在光电仪器应用方面颇具前景。然而,设计一种坚固、稳定且灵活的能屏蔽电磁波并在恶劣条件下工作的TCF仍是一项挑战。在此,通过使用简单且可扩展的溶液处理方法依次涂覆TiCT MXene和银纳米线(AgNW)混合导电网络,提出了一种具有有效电磁干扰屏蔽(EMI)性能和出色电光热效应的多功能柔性TCF。具体而言,对经过空气等离子体处理的聚碳酸酯(PC)薄膜依次进行MXene和AgNW的喷雾涂覆以构建高导电网络,然后通过旋涂结合热压将其转移并部分嵌入超薄聚(乙烯醇)(PVA)薄膜中以增强界面附着力。剥离后的MXene/AgNW-PVA TCF表现出最佳的光学和电学性能,方阻为18.3 Ω/sq,透过率为52.3%。因此,该TCF在X波段显示出32 dB的有效EMI屏蔽效率,具有很强的界面附着力和令人满意的柔韧性。此外,混合导电网络的高电导率和局域表面等离子体共振(LSPR)效应分别赋予TCF低压驱动的焦耳热性能和出色的光热效应,这可以确保在极寒条件下正常运行。鉴于其综合性能,这项工作为下一代透明EMI屏蔽挑战提供了新的解决方案。