Zhu Xiaoyang, Liu Mingyang, Qi Ximeng, Li Hongke, Zhang Yuan-Fang, Li Zhenghao, Peng Zilong, Yang Jianjun, Qian Lei, Xu Quan, Gou Nairui, He Jiankang, Li Dichen, Lan Hongbo
Shandong Engineering Research Center for Additive Manufacturing, Qingdao University of Technology, Qingdao, 266520, China.
Digital Manufacturing and Design Centre, Singapore University of Technology and Design, Singapore, 487372, Singapore.
Adv Mater. 2021 May;33(21):e2007772. doi: 10.1002/adma.202007772. Epub 2021 Apr 7.
Flexible transparent electrodes (FTEs) with an embedded metal mesh are considered a promising alternative to traditional indium tin oxide (ITO) due to their excellent photoelectric performance, surface roughness, and mechanical and environmental stability. However, great challenges remain for achieving simple, cost-effective, and environmentally friendly manufacturing of high-performance FTEs with embedded metal mesh. Herein, a maskless, templateless, and plating-free fabrication technique is proposed for FTEs with embedded silver mesh by combining an electric-field-driven (EFD) microscale 3D printing technique and a newly developed hybrid hot-embossing process. The final fabricated FTE exhibits superior optoelectronic properties with a transmittance of 85.79%, a sheet resistance of 0.75 Ω sq , a smooth surface of silver mesh (R ≈ 18.8 nm) without any polishing treatment, and remarkable mechanical stability and environmental adaptability with a negligible increase in sheet resistance under diverse cyclic tests and harsh working conditions (1000 bending cycles, 80 adhesion tests, 120 scratch tests, 100 min ultrasonic test, and 72 h chemical attack). The practical viability of this FTE is successfully demonstrated with a flexible transparent heater applied to deicing. The technique proposed offers a promising fabrication strategy with a cost-effective and environmentally friendly process for high-performance FTE.
具有嵌入式金属网格的柔性透明电极(FTE)由于其优异的光电性能、表面粗糙度以及机械和环境稳定性,被认为是传统氧化铟锡(ITO)的一种有前途的替代品。然而,要实现简单、经济高效且环保的高性能嵌入式金属网格FTE制造,仍面临巨大挑战。在此,通过结合电场驱动(EFD)微尺度3D打印技术和新开发的混合热压花工艺,提出了一种用于嵌入式银网格FTE的无掩膜、无模板和无电镀制造技术。最终制造的FTE表现出优异的光电性能,透过率为85.79%,方阻为0.75Ω/sq,银网格表面光滑(R≈18.8nm),无需任何抛光处理,并且在各种循环测试和恶劣工作条件(1000次弯曲循环、80次附着力测试、120次划痕测试、100分钟超声测试和72小时化学侵蚀)下方阻增加可忽略不计,具有出色的机械稳定性和环境适应性。通过应用于除冰的柔性透明加热器成功证明了这种FTE的实际可行性。所提出的技术为高性能FTE提供了一种具有成本效益和环境友好工艺的有前途的制造策略。