TY - JOUR
T1 - Doping-engineered Fermi level modulation in MXenes
T2 - Multiphysics field coupling enabled electron-pathway design for electromagnetic optimization
AU - Shu, Xiangfeng
AU - Yan, Sai Chao
AU - Liu, Yin
AU - Min, Fanfei
AU - Fang, Bo
AU - Pan, Likun
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/11/15
Y1 - 2025/11/15
N2 - Doping-engineered Fermi level modulation in Ti3C2Tx-MXene is demonstrated through controlled in-situ nitrogen doping, which effectively tailors electronic structures to enhance dipole polarization. By constructing biomimetic aerogels with Prussian blue-derived FeCo bimetallic units, we establish hierarchical electron pathways that address critical limitations in conventional aerogel absorbers, including unstable connectivity and uncontrolled pore geometry. This electron-pathway design optimizes conductive networks while mitigating MXene stacking, as confirmed by interfacial charge transport analysis. Density functional theory calculations confirm a nitrogen doping-dependent Fermi level shift, which underlies the exceptional electromagnetic wave absorption of the FeCo-PBA/N-Ti3C2Tx aerogels. Sample PM-2 achieves a minimum reflection loss (RLmin) of −67.05 dB with 3.24 GHz effective absorption bandwidth (EAB) at 25 wt% loading and 2.30 mm thickness, supported by its ultralow density (9.8 mg/cm3) and high pore connectivity. Sample PM-1 attains the widest EAB of 4.56 GHz with an RLmin of −58.65 dB, while sample PM-4 maintains strong performance (RLmin = −50.52 dB, EAB = 4.12 GHz) at a low filler loading of 15 wt%. COMSOL Multiphysics simulations further elucidate multi-field coupled energy conversion dynamics, revealing that optimized polarization efficiency contributes dominantly to the absorption enhancement. This work provides a validated Fermi-level-centric strategy for electromagnetic functional materials, with demonstrated applicability in flexible multifunctional integrated electronic devices.
AB - Doping-engineered Fermi level modulation in Ti3C2Tx-MXene is demonstrated through controlled in-situ nitrogen doping, which effectively tailors electronic structures to enhance dipole polarization. By constructing biomimetic aerogels with Prussian blue-derived FeCo bimetallic units, we establish hierarchical electron pathways that address critical limitations in conventional aerogel absorbers, including unstable connectivity and uncontrolled pore geometry. This electron-pathway design optimizes conductive networks while mitigating MXene stacking, as confirmed by interfacial charge transport analysis. Density functional theory calculations confirm a nitrogen doping-dependent Fermi level shift, which underlies the exceptional electromagnetic wave absorption of the FeCo-PBA/N-Ti3C2Tx aerogels. Sample PM-2 achieves a minimum reflection loss (RLmin) of −67.05 dB with 3.24 GHz effective absorption bandwidth (EAB) at 25 wt% loading and 2.30 mm thickness, supported by its ultralow density (9.8 mg/cm3) and high pore connectivity. Sample PM-1 attains the widest EAB of 4.56 GHz with an RLmin of −58.65 dB, while sample PM-4 maintains strong performance (RLmin = −50.52 dB, EAB = 4.12 GHz) at a low filler loading of 15 wt%. COMSOL Multiphysics simulations further elucidate multi-field coupled energy conversion dynamics, revealing that optimized polarization efficiency contributes dominantly to the absorption enhancement. This work provides a validated Fermi-level-centric strategy for electromagnetic functional materials, with demonstrated applicability in flexible multifunctional integrated electronic devices.
KW - Deionization
KW - Electromagnetic wave absorption
KW - Fermi level modulation
KW - Multiphysics field-coupling
KW - MXene-based aerogels
UR - https://www.scopus.com/pages/publications/105018060936
U2 - 10.1016/j.cej.2025.169345
DO - 10.1016/j.cej.2025.169345
M3 - 文章
AN - SCOPUS:105018060936
SN - 1385-8947
VL - 524
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 169345
ER -