Lan Chuntao, Jia Hao, Qiu Minghui, Fu Shaohai
National Manufacturing Innovation Centre of Advanced Dyeing and Finishing Technology, Key Laboratory of Eco-Textiles, Ministry of Education, Jiangnan University, Wuxi, Jiangsu 214122, China.
ACS Appl Mater Interfaces. 2021 Aug 18;13(32):38761-38772. doi: 10.1021/acsami.1c11638. Epub 2021 Aug 9.
Wearable electromagnetic interference (EMI) shielding fabrics are highly desirable with the rapid development of electronic devices and wireless communications where electromagnetic pollution is a great concern for human health and the reliability of precision equipment. The balance between EMI shielding efficiency (SE) and the flexibility of fabric is still challenging because of the generally opposite requirements for coating thickness. In this work, MXene/insulative polymer coating with an alternating structure is fabricated a stepwise assembly technique to judiciously combine excellent shielding elements, a reasonable structure, and high nanofiller content together in the coating. Owing to this novel strategy, the coating with nanoscale thickness (∼500 nm) has realized the commercial requirement for EMI SE and well retained the flexibility and air permeability of the fabric. Compared with the corresponding pure MXene coating, such multilayered coating demonstrates 138.95% enhancement of EMI SE due to the improved dielectrical properties and intensive multiple reflections of electromagnetic waves. Additionally, this hybrid coating also acts as an excellent fire-resistant barrier for the inner flammable fabric to protect human beings and electronic devices in case of accidental fire. This work provides new insights into the rational design of shields with nanometer thickness to realize high EMI shielding performance and good fire resistance for new-generation portable and wearable EMI shielding products.
随着电子设备和无线通信的迅速发展,电磁污染对人类健康和精密设备的可靠性构成了重大威胁,因此可穿戴电磁干扰(EMI)屏蔽织物备受青睐。由于对涂层厚度的要求通常相反,EMI屏蔽效率(SE)与织物柔韧性之间的平衡仍然具有挑战性。在这项工作中,采用逐步组装技术制备了具有交替结构的MXene/绝缘聚合物涂层,以便在涂层中明智地将优异的屏蔽元素、合理的结构和高纳米填料含量结合在一起。由于这种新颖的策略,具有纳米级厚度(约500nm)的涂层实现了EMI SE的商业要求,并很好地保留了织物的柔韧性和透气性。与相应的纯MXene涂层相比,这种多层涂层由于改善的介电性能和电磁波的强烈多次反射,EMI SE提高了138.95%。此外,这种混合涂层还可作为内部易燃织物的优良防火屏障,在意外火灾发生时保护人类和电子设备。这项工作为合理设计具有纳米厚度的屏蔽层提供了新的思路,以实现新一代便携式和可穿戴EMI屏蔽产品的高EMI屏蔽性能和良好的耐火性。