2026/03/02 by Jie Liang, Zhaochen Li, Fang Ye +4 · 1 voice
Engineering · Materials Science · #Electromagnetic wave absorption materials #Graphene research and applications #Thermal Radiation and Cooling Technologies
paper · doi:10.1007/s40820-026-02117-8
openalex publication_date 2026/03/02 · openalex created_date 2026/03/03 · openalex updated_date 2026/07/30
Abstract This work demonstrates a radical-manipulation strategy for synthesizing graphene (Gr)-skinned SiO 2 fabric via low-pressure chemical vapor deposition using methanol precursor. Controlled pyrolysis at high temperature regulated C 1 /C 2 /C 6 radical ratios, enabling microstructure engineering. Substrate effects governed bilayer evolution. SiO 2 imposed lower adsorption energy of C 1 and higher diffusion barriers of radical compared to Gr, promoting edge defects in subsurface G1-type Gr layers, whereas reduced substrate constraints facilitated low-defect G2-type Gr growth on top of G1-type Gr. Synergistic control of gas-phase kinetics and substrate dynamics enabled fine-tunable sheet resistance (26–150 Ω sq −1 ), establishing Gr-skinned fibers as multifunctional platforms for integrated electromagnetic-thermal management systems. When addressing the needs of electromagnetic communication and electrothermal deicing, laser-etched band-pass frequency selective surface structures of Gr-skinned fabric were fabricated to achieve electromagnetic wave (EMW) transmittance while maintaining Joule heating capability. A sandwich structure was prepared by laminating the Gr-skinned fabric with EMW transparent sheets exhibiting voltage-dependent transmittance, simultaneously sustaining broadband transmission and effective heating. This work demonstrates a strategy to mitigate the longstanding conductivity-EMW transparency trade-off in Gr-functionalized fibers through a multiscale engineering that coordinates microscopic structural regulation with macroscopic patterning, thereby unlocking next-generation smart composites for 5G/6G wearables, aerospace radomes, and beyond.