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Metal-organic frameworks (MOFs) manifest enormous potential in promoting electromagnetic wave (EMW) absorption thanks to the tailored components, topological structure, and high porosity. Herein, rodlike conductive MOFs (cMOFs) composed of adjustable metal ions of Zn, Cu, Co, or Ni and ligands of hexahydroxytriphenylene (HHTP) are prepared to attain tunable dielectric properties for a tailored EMW absorption. Specifically, the influences of the cMOFs' composition, charge transport characteristic, topological crystalline structure, and anisotropy microstructure on dielectric and EMW absorption performance are ascertained, advancing the understanding of EMW attenuation mechanisms of MOFs. The boosted conductive and polarization losses derived from the conjugation effects and terminal groups, as well as shape anisotropy, lead to a prominent EMW absorption of the cMOFs. The Cu-HHTP confers a minimum reflection loss (RL) of -63.55 dB at the thickness of 2.9 mm and a maximum effective absorption bandwidth of 5.2 GHz. Moreover, Zn-HHTP showcases the absorption superiority in the S-band (2-4 GHz) with an RL of -62.8 dB at a thickness of 1.9 mm. This work not only hoists the mechanistic understanding of the structure-function relationships for the cMOFs but also offers guidelines for preparing functional MOF materials.
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http://dx.doi.org/10.1021/acsnano.3c02170 | DOI Listing |
Small
August 2025
National Engineering Research Center of Flame Retardant Materials, School of Materials Science & Engineering, Beijing Institute of Technology, Beijing, 100081, P. R. China.
Effective mitigation of electromagnetic microwave (EMW) pollution requires the development of lightweight, broadband, and high-performance microwave absorbing materials. In this work, a novel FeSnC/Sn/CNF composite is synthesized via a combination of hydrothermal synthesis, electrospinning, and high-temperature carbonization. The optimal sample (FSC3) achieved a minimum reflection loss (RL) of -28.
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August 2025
School of Materials Science and Engineering and Tianjin Key Laboratory of Composites and Functional Materials, Tianjin University, Tianjin 300072, People's Republic of China.
Anion doping engineering is an effective method to regulate the electronic structure of transition metal dichalcogenides (TMDs), especially at the electron orbital level. Based on electromagnetic wave (EMW) loss theory, this study innovatively constructs dipole polarization sites S doping in FeSe. The electronic structure of these sites is systematically analyzed to reveal charge redistribution and bond hybridization induced by dopant incorporation.
View Article and Find Full Text PDFSmall
August 2025
Zhejiang Key Laboratory of Data-Driven High-Safety Energy Materials and Applications, Ningbo Key Laboratory of Special Energy Materials and Chemistry, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo, 315201, China.
TiSiC (Titanium Silicon Carbide) represents a MAX phase that uniquely combines the merits of metals and ceramics. However, synthesis of fine-grained TiSiC especially through the polymer-derived ceramic (PDC) route remains a challenge. This study synthesizes fine-grained, high-phase-fraction TiSiC using polycarbosilane (PCS) and nanosized Ti, Al, and Si powders as raw materials.
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August 2025
State Key Laboratory of Biopharmaceutical Preparation and Delivery, Institute of Process Engineering, Chinese Academy of Sciences, Beijing, 100190, China.
The development of high-performance electromagnetic wave absorbers is critical for mitigating electromagnetic pollution in modern electronic and communication systems. Here, a scalable strategy is developed to fabricate hierarchically porous, multiphase Si-based ceramics (Si-O-C) via one-step activation of carbon-rich polycarbosilane precursors. The resulting material integrates β-SiC crystals, amorphous SiOC, and conductive carbon within a tunable porous architecture.
View Article and Find Full Text PDFAdv Mater
August 2025
The MOE Key Laboratory of Material Physics and Chemistry under Extraordinary Conditions, Ministry of Education, School of Chemistry and Chemical Engineering, Northwestern Polytechnical University, Xi'an, 710072, China.
Ultra-broadband electromagnetic wave (EMW) absorption depends on the balance of impedance matching and attenuation, which heavily rely on the structural integrity via rigorous production process or extreme reaction condition, constraining their applications particularly in biomedicine and flexible electronics. Here, a simple one-step method is proposed to access a flexible and repairable ultra-broadband EMW absorber by the photopolymerization of one common monomer in ionic liquid. The liquid-liquid phase separation process of poly (N-isopropyl acrylamide) and ionic liquid results in a high polymer content network comprising conductive nanochannels intertwined with abundant polymer chain/ionic liquid heterogeneous interface (basic unit < 20 nm).
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