Su Zhen, Yang Huihui, Wang Gang, Zhang Yilei, Zhang Jia, Lin Junhao, Jia Dechang, Wang Heyan, Lu Zhengang, Hu PingAn
School of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150080, China; Key Laboratory of Micro-systems and Micro-structures, Manufacturing of Ministry of Education (MOE), Harbin Institute of Technology, Harbin 150080, China.
School of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150080, China; Key Laboratory of Micro-systems and Micro-structures, Manufacturing of Ministry of Education (MOE), Harbin Institute of Technology, Harbin 150080, China.
J Colloid Interface Sci. 2023 Jun 15;640:610-618. doi: 10.1016/j.jcis.2023.02.115. Epub 2023 Feb 28.
The multiple requirements of optical transmittance, high shielding effectiveness, and long-term stability bring considerable challenge to electromagnetic interference (EMI) shielding in the fields of visualization windows, transparent optoelectronic devices, and aerospace equipment. To this end, attempts were hereby made, and based on high-quality single crystal graphene (SCG)/hexagonal boron nitride (h-BN) heterostructure, transparent EMI shielding films with weak secondary reflection, nanoscale ultra-thin thickness and long-term stability were finally realized by a composite structure. In this novel structure, SCG was adopted as the absorption layer, while sliver nanowires (Ag NWs) film acted as the reflection layer. These two layers were placed on different sides of the quartz to form a cavity, which achieved the dual coupling effect, so that the electromagnetic wave was reflected multiple times to form more absorption loss. Among the absorption dominant shielding films, the composite structure in this work demonstrated stronger shielding effectiveness of 28.76 dB with a higher light transmittance of 80.6%. In addition, under the protection of the outermost h-BN layer, the decline range of the shielding performance of the shielding film was extensively reduced after 30 days of exposure to air and maintained long-term stability. Overall, this study provides an outstanding EMI shielding material with great potential for practical applications in electronic devices protection.
光学透过率、高屏蔽效能和长期稳定性的多重要求给可视化窗口、透明光电器件及航空航天设备领域的电磁干扰(EMI)屏蔽带来了巨大挑战。为此,进行了相关尝试,并基于高质量单晶石墨烯(SCG)/六方氮化硼(h-BN)异质结构,最终通过复合结构实现了具有弱二次反射、纳米级超薄厚度和长期稳定性的透明EMI屏蔽膜。在这种新颖结构中,SCG用作吸收层,而银纳米线(Ag NWs)膜用作反射层。这两层置于石英的不同侧以形成一个腔体,实现了双重耦合效应,使电磁波多次反射以形成更多吸收损耗。在以吸收为主的屏蔽膜中,本工作中的复合结构展现出更强的屏蔽效能,达28.76 dB,且具有80.6%的较高透光率。此外,在最外层h-BN层的保护下,屏蔽膜暴露于空气中30天后屏蔽性能的下降幅度大幅减小,并保持了长期稳定性。总体而言,本研究提供了一种出色的EMI屏蔽材料,在电子设备防护方面具有巨大的实际应用潜力。