TY - JOUR
T1 - Construction of hierarchical defect networks comprising heterointerfaces, vacancies, and heteroatoms for superior microwave attenuation
AU - An, Xiaopeng
AU - Xue, Qingze
AU - Zheng, Liaochuan
AU - Nan, Kai
AU - Fan, Lihong
AU - Wang, Yan
N1 - Publisher Copyright:
© 2026 Elsevier Ltd.
PY - 2026/6
Y1 - 2026/6
N2 - A phosphorus-doped hierarchical Co3S4/NiS2 encapsulated within nitrogen-doped graphitic carbon is synthesized via a tailored multi-step thermal treatment of NiCo-Prussian blue analogues. The integrated structure combines magnetic components, porous features, and a multilevel defect network (including Co3S4/NiS2 heterointerfaces, sulfur vacancies, and heteroatoms), significantly optimizing impedance matching and electromagnetic (EM) loss capabilities. As a result, the resultant composite achieves a remarkable minimum reflection loss of −72.8 dB at 2.4 mm. To elucidate the intrinsic correlation between the microstructure and macroscopic performance, a multi-scale computational framework integrating first-principles calculations, micromagnetic theory, and finite element analysis is established. This framework systematically reveals how heterointerface engineering, vacancies, and heteroatom doping govern the dielectric polarization, magnetic domain configurations, and overall EM attenuation. This work bridges the gap between microstructure and macroscopic properties via cross-scale theoretical analysis, offering critical guidelines for the rational design of microwave absorption materials (MAMs).
AB - A phosphorus-doped hierarchical Co3S4/NiS2 encapsulated within nitrogen-doped graphitic carbon is synthesized via a tailored multi-step thermal treatment of NiCo-Prussian blue analogues. The integrated structure combines magnetic components, porous features, and a multilevel defect network (including Co3S4/NiS2 heterointerfaces, sulfur vacancies, and heteroatoms), significantly optimizing impedance matching and electromagnetic (EM) loss capabilities. As a result, the resultant composite achieves a remarkable minimum reflection loss of −72.8 dB at 2.4 mm. To elucidate the intrinsic correlation between the microstructure and macroscopic performance, a multi-scale computational framework integrating first-principles calculations, micromagnetic theory, and finite element analysis is established. This framework systematically reveals how heterointerface engineering, vacancies, and heteroatom doping govern the dielectric polarization, magnetic domain configurations, and overall EM attenuation. This work bridges the gap between microstructure and macroscopic properties via cross-scale theoretical analysis, offering critical guidelines for the rational design of microwave absorption materials (MAMs).
KW - Heteroatom doping
KW - Heterointerfaces
KW - Interface engineering
KW - Microwave absorption
UR - https://www.scopus.com/pages/publications/105035874030
U2 - 10.1016/j.carbon.2026.121613
DO - 10.1016/j.carbon.2026.121613
M3 - 文章
AN - SCOPUS:105035874030
SN - 0008-6223
VL - 256
JO - Carbon
JF - Carbon
M1 - 121613
ER -