Wang Qixiang, Feng Yuhui, Lin Feifei, Chen Yuzhe, Ding Ning, Zhang Yijie, Liu Shujuan, Zhao Weiwei, Zhao Qiang
State Key Laboratory of Organic Electronics and Information Displays and Jiangsu Key Laboratory for Biosensors, Institute of Advanced Materials (IAM), Nanjing University of Posts and Telecommunications, 9 Wenyuan, Nanjing 210023, People's Republic of China.
College of Electronic and Optical Engineering and College of Flexible Electronics (Future Technology), Nanjing University of Posts and Telecommunications, 9 Wenyuan Road, Nanjing 210023, People's Republic of China.
ACS Appl Mater Interfaces. 2024 Dec 25;16(51):70644-70655. doi: 10.1021/acsami.4c16375. Epub 2024 Dec 12.
Flexible transparent conductive films (FTCFs) with electromagnetic interference (EMI) shielding performance are increasingly crucial as visualization windows in optoelectronic devices due to their capabilities to block electromagnetic radiation (EMR) generated during operation. Metal mesh-based FTCFs have emerged as a promising representative in which EMI shielding effectiveness (SE) can be enhanced by increasing the line width, reducing the line spacing, or increasing mesh thickness. However, these conventional approaches decrease optical transmittance or increase material consumption, thus compromising the optical performance and economic viability. Hence, a significant challenge still remains in the realm of metal mesh-based FTCFs to enhance EMI SE while maintaining their original optical transmittance and equivalent material usage. Herein, we propose an innovative symmetric structural optimization strategy to create silver mesh-based sandwich-FTCFs with arbitrary customized sizes through high-precision extrusion printing technology for tunable EMI shielding performance. The meticulous adjustment of -axis offsets and printing starting point ensures perfect alignment of the silver mesh on both sides of the transparent substrate. This approach yields sandwich-FTCFs with optical transmittance equivalent to single-layer-FTCFs under identical parameters while simultaneously achieving up to 40% enhanced EMI SE. This improvement stems from the synergistic effect of multiple internal reflections and wave interference between the symmetric silver meshes. The excellent shielding performance of sandwich-FTCFs is evidenced through effectively blocking electromagnetic waves from common devices such as mobile phones, Bluetooth earphones, and smartwatches. Our work represents a significant advancement in balancing optical transmittance, EMI SE, and material efficiency in high-performance and cost-effective FTCFs.
具有电磁干扰(EMI)屏蔽性能的柔性透明导电薄膜(FTCFs)作为光电器件中的可视化窗口变得越来越重要,因为它们能够阻挡运行过程中产生的电磁辐射(EMR)。基于金属网格的FTCFs已成为一种有前途的代表,其中可以通过增加线宽、减小线间距或增加网格厚度来提高EMI屏蔽效能(SE)。然而,这些传统方法会降低光学透过率或增加材料消耗,从而损害光学性能和经济可行性。因此,在基于金属网格的FTCFs领域,在保持其原始光学透过率和等效材料用量的同时提高EMI SE仍然是一个重大挑战。在此,我们提出了一种创新的对称结构优化策略,通过高精度挤出印刷技术制造具有任意定制尺寸的基于银网格的三明治式FTCFs,以实现可调的EMI屏蔽性能。对z轴偏移和印刷起始点的精心调整确保了透明基板两侧银网格的完美对齐。这种方法产生的三明治式FTCFs在相同参数下具有与单层FTCFs相当的光学透过率,同时EMI SE提高了40%。这种改进源于对称银网格之间多次内部反射和波干涉的协同效应。三明治式FTCFs优异的屏蔽性能通过有效阻挡来自手机、蓝牙耳机和智能手表等常见设备的电磁波得到证明。我们的工作代表了在高性能和高性价比的FTCFs中平衡光学透过率、EMI SE和材料效率方面的重大进展。