TY - JOUR
T1 - Local Charge Engineering Through Anion–Cation Co-modulation for Multifunctional Programmable Electromagnetic Wave Attenuation
AU - Wang, Dan
AU - Liu, Chongbo
AU - Peng, Hualong
AU - Hu, Ruizhe
AU - Zheng, Qi
AU - Huang, Haoran
AU - Zhao, Fang
AU - Peng, Yuhui
AU - Cao, Maosheng
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - Electromagnetic wave absorption (EMWA) materials with tunable responses are critically important for operation in complex electromagnetic environments. In this study, a novel dual-ion co-modulation strategy is introduced to overcome the limited controllability of conventional EMWA materials. By employing a coordination-mediated gelation phase transformation approach, a series of transition metal sulfide/sulfur–nitrogen co-doped carbon (MxSy/SNC, M = Fe, Co, Ni, or Cu) aerogels are successfully fabricated. First-principles calculations demonstrate that N,S co-doping tunes the electronic structure of the carbon matrix, enhancing local charge imbalance and promoting dipole polarization, which significantly broadens the EMWA band. At 1.65 mm, the effective absorption bandwidth almost covers the entire Ku band. Furthermore, cation-induced modulation of the electronic configuration enables precise tuning of the built-in electric field and dielectric response, resulting in customizable absorption peaks and bandwidths. All samples achieve a minimum reflection loss (RLmin) below −60 dB, with the RLmin peak frequency shifting from 17.44 GHz to 11.6, 9.84, and 5.12 GHz depending on the metal ion. Finally, a low-frequency antenna and a one-to-two power divider are constructed, demonstrating strong application potential in the communications field. This study provides a new pathway for designing high-performance, programmable EMWA systems and multifunctional materials.
AB - Electromagnetic wave absorption (EMWA) materials with tunable responses are critically important for operation in complex electromagnetic environments. In this study, a novel dual-ion co-modulation strategy is introduced to overcome the limited controllability of conventional EMWA materials. By employing a coordination-mediated gelation phase transformation approach, a series of transition metal sulfide/sulfur–nitrogen co-doped carbon (MxSy/SNC, M = Fe, Co, Ni, or Cu) aerogels are successfully fabricated. First-principles calculations demonstrate that N,S co-doping tunes the electronic structure of the carbon matrix, enhancing local charge imbalance and promoting dipole polarization, which significantly broadens the EMWA band. At 1.65 mm, the effective absorption bandwidth almost covers the entire Ku band. Furthermore, cation-induced modulation of the electronic configuration enables precise tuning of the built-in electric field and dielectric response, resulting in customizable absorption peaks and bandwidths. All samples achieve a minimum reflection loss (RLmin) below −60 dB, with the RLmin peak frequency shifting from 17.44 GHz to 11.6, 9.84, and 5.12 GHz depending on the metal ion. Finally, a low-frequency antenna and a one-to-two power divider are constructed, demonstrating strong application potential in the communications field. This study provides a new pathway for designing high-performance, programmable EMWA systems and multifunctional materials.
KW - built-in electric field
KW - dual-ion co-modulation
KW - gelation phase transformation
KW - local charge tuning
KW - multifunctional integrated
KW - programmable EMWA
UR - https://www.scopus.com/pages/publications/105040967575
U2 - 10.1002/adma.73625
DO - 10.1002/adma.73625
M3 - Article
AN - SCOPUS:105040967575
SN - 0935-9648
JO - Advanced Materials
JF - Advanced Materials
ER -