Chen Mingyi, Zhu Jian, Zhang Kai, Zhou Hongkang, Gao Yufei, Fan Jie, Chen Rouxi, Wang Hsing-Lin
School of Textile Science and Engineering, Tiangong University, Tianjin, 300387, People's Republic of China.
Department of Materials Science and Engineering, Southern University of Science and Technology, Shenzhen, 518055, People's Republic of China.
Nanomicro Lett. 2024 Dec 2;17(1):80. doi: 10.1007/s40820-024-01583-2.
The rapid development of communication technology and high-frequency electronic devices has created a need for more advanced electromagnetic interference (EMI) shielding materials. In response to this demand, a study has been conducted to develop multifunctional carbon nanofibers (CNFs)/polyaniline (PANI) aerogels with excellent electromagnetic interference shielding, flame retardancy, and thermal insulation performance. The process involved freeze-drying of electrospun CNFs and PANI nanoparticles followed by in situ growth PANI to coat the CNFs, creating the core-shell structured CNFs/PANI composite fiber and its hybrid aerogels (CP-3@PANI). The interaction between PANI and aniline (ANI) provides attachment sites, allowing additional ANI adsorption into the aerogel for in situ polymerization. This results in PANI uniformly covering the surface of the CNFs, creating a core-shell composite fiber with a flexible CNF core and PANI shell. This process enhances the utilization rate of the ANI monomer and increases the PANI content loaded onto the aerogel. Additionally, effective connections are established between the CNFs, forming a stable, conductive three-dimensional network structure. The prepared CP-3@PANI aerogels exhibit excellent EMI shielding efficiency (SE) of 85.4 dB and specific EMI SE (SE d) of 791.2 dB cm g⁻ in the X-band. Due to the synergistic flame-retardant effect of CNFs, PANI, and the dopant (phytic acid), the CP-3@PANI aerogels demonstrate outstanding flame-retardant and thermal insulation properties, with a peak heat release rate (PHRR) as low as 7.8 W g⁻ and a total heat release of only 0.58 kJ g⁻. This study provides an effective strategy for preparing multifunctional integrated EMI shielding materials.
通信技术和高频电子设备的快速发展,催生了对更先进的电磁干扰(EMI)屏蔽材料的需求。为响应这一需求,开展了一项研究,以开发具有优异电磁干扰屏蔽、阻燃和隔热性能的多功能碳纳米纤维(CNFs)/聚苯胺(PANI)气凝胶。该过程包括对静电纺丝的CNFs和PANI纳米颗粒进行冷冻干燥,然后原位生长PANI以包覆CNFs,从而制备出核壳结构的CNFs/PANI复合纤维及其混合气凝胶(CP-3@PANI)。PANI与苯胺(ANI)之间的相互作用提供了附着位点,使额外的ANI能够吸附进气凝胶中进行原位聚合。这使得PANI均匀地覆盖在CNFs表面,形成了一种具有柔性CNF核和PANI壳的核壳复合纤维。该过程提高了ANI单体的利用率,并增加了负载在气凝胶上的PANI含量。此外,在CNFs之间建立了有效的连接,形成了稳定的导电三维网络结构。所制备的CP-3@PANI气凝胶在X波段表现出85.4 dB的优异电磁干扰屏蔽效率(SE)和791.2 dB cm g⁻¹的比电磁干扰屏蔽效率(SE d)。由于CNFs、PANI和掺杂剂(植酸)的协同阻燃作用,CP-3@PANI气凝胶表现出出色的阻燃和隔热性能,其峰值热释放速率(PHRR)低至7.8 W g⁻¹,总热释放仅为0.58 kJ g⁻¹。本研究为制备多功能集成电磁干扰屏蔽材料提供了一种有效策略。