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Published on: March 7, 2025
Coaxial Electrospun MXene/GO@PAN Nanofibers for High-Performance Electromagnetic Interference Shielding and Thermal
Tibebu Shiferaw Kassa1, Abdurohman Mengesha Yessuf1, Ayenew Meniber Mihiretu2
1Beijing Key Laboratory of Advanced Functional Polymer Composites, College of Materials Science and Engineering, Beijing University of Chemical Technology, Beijing 100029, China.
Abstract:
The emergence of 5G/6G wireless communication, aerospace, and sophisticated electronics devices has rendered electromagnetic interference (EMI) a serious challenge to device reliability and signal integrity. This intensifying issue demands a lightweight, flexible, and absorption-dominated shielding material. In this study, we employed coaxial electrospinning to fabricate MXene/graphene oxide/polyacrylonitrile core-shell nanofibers. This fabricated core-shell design features a conductive MXene-rich core encapsulated in a graphene oxide/polyacrylonitrile shell, which enhances tensile strength, electrical conduction, dipole polarization, impedance matching, interfacial polarization, and internal reflections, thereby improving electromagnetic wave attenuation. The optimized core-shell nanofiber with a graphene oxide-to-MXene mass ratio of 1:2 exhibited a shielding effectiveness of 68.86 dB (99.99995% electromagnetic wave attenuation), an electrical conductivity of 150.0 S·cm-1, and a specific shielding effectiveness of 14,085 dB·cm2·g-1. In addition to blocking electromagnetic interference, the MXene/graphene oxide@polyacrylonitrile core-shell nanofibers exhibit improved ability to facilitate efficient heat dissipation and prevent localized overheating. This multifunctional core-shell nanofiber design offers a flexible, scalable route to developing next-generation materials for EMI shielding, infrared stealth, and thermal management, with potential applications in the electronics, aerospace, and automotive industries.
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