Acta Phys. -Chim. Sin. ›› 2026, Vol. 42 ›› Issue (6): 100285.doi: 10.1016/j.actphy.2026.100285

• ARTICLE • Previous Articles    

Synergistic molecular assembly and impedance matching in polyimide-derived porous carbon nanosheets for advanced microwave absorption

Bo Liang1,2, Yuyijian Zhao1, Siyu Wang1, Shihan Huang1, Fangke Zhou1, Chuankun Zhang2, Yue Wang1,2,*(), Xiaoming Guo1,2,*()   

  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, School of Optoelectronic Engineering, School of New Energy, Hubei University of Automotive Technology, Shiyan 442002, Hubei Province, China
  • Received:2026-02-14 Revised:2026-03-10 Accepted:2026-03-11 Published:2026-04-21
  • Contact: Email: wangyue@huat.edu.cn (Yue Wang)gxm@huat.edu.cn (Xiaoming Guo)

Abstract:

Herein, a novel strategy for fabricating microwave absorption materials via molecular-level design that synergistically regulates dielectric and magnetic losses. The method utilizes a polyimide precursor containing both carboxyl and benzimidazole functional groups as the key component. Through an ice-templating process followed by in-situ ion exchange, Ni2+ ions are uniformly incorporated into the polymeric skeleton. Subsequent thermal imidization and carbonization yield nitrogen-doped two-dimensional carbon nanosheets embedded with uniformly dispersed Ni/NiO nanoparticles (BPCN@Ni/NiO). This material exhibits significantly superior microwave absorption properties compared to its counterpart synthesized without the benzimidazole structure (NPCN@Ni/NiO). BPCN@Ni/NiO achieves a remarkable minimum reflection loss (RLmin) of −69.02 dB with effective absorption bandwidth (EAB) of 8.92 GHz (8.28–17.2 GHz). Microstructural analyses confirm its three-dimensional interconnected nanosheet architecture, highly dispersed Ni/NiO species, and homogeneous elemental distribution. The performance enhancement is attributed to the synergistic complexation of Ni2+ ions by benzimidazole and carboxyl groups, which enables efficient loading and uniform dispersion of nickel species, thereby optimizing impedance matching. Furthermore, the unique 2D conductive network, abundant heterogeneous interfaces (C/Ni/NiO), defect-induced dipole polarization, and magnetic coupling between Ni and NiO collectively contribute to synergistic multiple loss mechanisms, ultimately endowing the material with excellent microwave attenuation capability. This work offers a new pathway for designing lightweight, efficient, and broadband carbon-based composite absorbers through precise molecular engineering.

Key words: Microwave absorption, Benzimidazole polyimide, Carbon nanosheets, Nickel nanoparticles, Heterogeneous interface