TY - JOUR
T1 - Multi-configuration synergistic modulation of MXene/poly-Schiff-base/Fe3O4 aerogels with enhanced microwave absorption, thermal insulation, and flame retardancy
AU - Peng, Jinbin
AU - Zhao, Fang
AU - Wu, Liping
AU - Xiong, Zhiqiang
AU - Chen, Dezhi
AU - Liu, Chongbo
AU - Peng, Yuhui
AU - Cao, Maosheng
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/9/1
Y1 - 2026/9/1
N2 - Multi-configuration modulation strategies play a pivotal role in enhancing electromagnetic wave absorption (EMWA) performance by simultaneously tuning dielectric, magnetic, and geometric characteristics. In this work, a poly-Schiff-base (PSB) is synthesized in situ on amino-functionalized Ti3C2Tx-MXene to form a MXene/PSB hybrid, wherein carrier concentration and mobility are effectively optimized by adjusting the MXene content. Subsequently, Fe3O4 nanoparticles are confinedly grown on the MXene/PSB framework. Driven by a liquid nitrogen-induced temperature gradient, MXene/poly-Schiff-base/Fe3O4 (MPF) aerogels with ordered channel structures are successfully fabricated. The effects of electronic configuration, magnetic domain configuration, and geometric configuration on EMWA performance are systematically investigated. The undirectional MPF aerogels demonstrate a minimum reflection loss (RLmin) of −62.09 dB, while the directionally structured aerogels exhibit a wide effective absorption bandwidth (EAB) of 5.89 GHz. Density functional theory calculations and micromagnetic simulations are employed to elucidate the underlying EMWA mechanisms. Furthermore, frustum- and full-pyramid metamaterial structures deliver an ultra-broad EAB of 36.1 GHz and an ultra-low RLmin of −74.2 dB, respectively. In addition to outstanding EMWA performance, the MPF aerogels demonstrate excellent radar stealth capability, with a maximum radar cross-section reduction of 30.04 dB·m2, as well as thermal insulation and flame-retardant properties. These results highlight MPF aerogels as a promising multifunctional structural platform for next-generation advanced EMWA materials.
AB - Multi-configuration modulation strategies play a pivotal role in enhancing electromagnetic wave absorption (EMWA) performance by simultaneously tuning dielectric, magnetic, and geometric characteristics. In this work, a poly-Schiff-base (PSB) is synthesized in situ on amino-functionalized Ti3C2Tx-MXene to form a MXene/PSB hybrid, wherein carrier concentration and mobility are effectively optimized by adjusting the MXene content. Subsequently, Fe3O4 nanoparticles are confinedly grown on the MXene/PSB framework. Driven by a liquid nitrogen-induced temperature gradient, MXene/poly-Schiff-base/Fe3O4 (MPF) aerogels with ordered channel structures are successfully fabricated. The effects of electronic configuration, magnetic domain configuration, and geometric configuration on EMWA performance are systematically investigated. The undirectional MPF aerogels demonstrate a minimum reflection loss (RLmin) of −62.09 dB, while the directionally structured aerogels exhibit a wide effective absorption bandwidth (EAB) of 5.89 GHz. Density functional theory calculations and micromagnetic simulations are employed to elucidate the underlying EMWA mechanisms. Furthermore, frustum- and full-pyramid metamaterial structures deliver an ultra-broad EAB of 36.1 GHz and an ultra-low RLmin of −74.2 dB, respectively. In addition to outstanding EMWA performance, the MPF aerogels demonstrate excellent radar stealth capability, with a maximum radar cross-section reduction of 30.04 dB·m2, as well as thermal insulation and flame-retardant properties. These results highlight MPF aerogels as a promising multifunctional structural platform for next-generation advanced EMWA materials.
KW - Amino-decorated MXene
KW - Confined growth
KW - Electromagnetic loss
KW - Multi-configuration modulation
KW - Multi-functionality
KW - Poly-Schiff-base aerogels
UR - https://www.scopus.com/pages/publications/105041932507
U2 - 10.1016/j.cej.2026.177397
DO - 10.1016/j.cej.2026.177397
M3 - Article
AN - SCOPUS:105041932507
SN - 1385-8947
VL - 543
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 177397
ER -