Acta Phys. -Chim. Sin. ›› 2026, Vol. 42 ›› Issue (11): 100405.doi: 10.1016/j.actphy.2026.100405

• ARTICLE • Previous Articles    

Fluorocarbon-gated multilevel heterointerfaces synergistically drive full X-band microwave absorption in composite foams

Jun Wang1,2, Xinxing Li1, Yibo Wang1, Yafei Mu1, Xiaoming Guo1, Di Lan1,2, Dashuang Wang1, Haifeng Li1,2   

  1. 1 School of Automotive Materials, Hubei University of Automotive Technology, Shiyan 442002, Hubei Province, China;
    2 Hubei Key Laboratory of Energy Storage and Power Battery, Hubei University of Automotive Technology, Shiyan 442002, Hubei Province, China
  • Received:2026-06-30 Revised:2026-08-19 Accepted:2026-08-23 Published:2026-09-29
  • Contact: Dashuang Wang, Haifeng Li E-mail:wangdashuang@cqu.edu.cn;lhf0719@163.com

Abstract: For communication and radar stealth applications, microwave absorbing materials urgently need to achieve efficient attenuation and stable operation within limited thickness. However, while continuous conductive networks or high-load loss phases can enhance attenuation, they are prone to impedance mismatch due to excessively high surface dielectric response; simply using low-polarity polymers for coverage may weaken the internal active interface, making it difficult to coordinate wave entry and energy conversion. To address this, we propose a “fluorocarbon-gating-buried-interface dissipation” strategy to construct polytetrafluoroethylene (PTFE)/poly(vinyl alcohol) (PVA)-based porous composite foams containing short carbon fibers (CFs) and cobalt oxide (CoOx) domains, hereafter denoted PPCFCs. Following the immobilization of Co2+ precursors on acidified short carbon fibers, PTFE/PVA foaming, and N2/air stepwise thermal reconstruction, the resulting composite exhibits an F-rich surface composition and a low-order carbonaceous matrix containing embedded, locally dispersed CoOx/CFs-related nanocrystalline domains. The fluorocarbon surface helps mitigate impedance abrupt changes at the air/material interface and reduces liquid-phase wetting, while the porous framework extends the propagation path. Internally, non-penetrating CFs microcurrent units and CoOx nanodomains synergistically induce confined charge migration, multi-level polarization relaxation, and auxiliary magnetic response. The optimal PPCFC-3 achieves a minimum reflection loss of -52.61 dB at 2.8 mm and effective X-band coverage at 3.4 mm. Simultaneously, this material exhibits high apparent hydrophobicity and effective barrier against corrosive media penetration. This study provides a spatial partitioning design approach for optimizing porous microwave absorbing materials through the synergistic effect of surface impedance tuning and internal interface dissipation.

Key words: Fluorocarbon gating, Buried heterointerfaces, Polarization relaxation, Microwave absorption