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Microwave-assisted synthesis of high-performance TaC nanorods for enhanced electromagnetic wave absorption

Yongqiang Cheng, Mao Chena, Haoyuan Lei, Rui Zhang, Hongxia Li, Mi Tian, Bingbing Fan

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Abstract

One-dimensional tantalum carbide (TaC) nanorods are considered promising candidates for high-temperature electromagnetic wave (EMW) absorption because of their intrinsically high electrical conductivity and exceptional thermal stability. However, conventional synthesis approaches typically yield products with low quality and poor efficiency, limiting their practical applicability. Here, we report the rapid and scalable synthesis of high-quality TaC nanorods via a molten salt-assisted carbothermal reduction strategy integrated with microwave heating. The formation of well-defined one-dimensional TaC nanorods was achieved within 20 min at 1300 °C by precisely tuning the precursor composition (Ta 2O 5: C: NaCl: Ni = 1: 8: 2: 0.08). The resulting TaC nanorods exhibit notable EMW absorption properties, with a maximum effective absorption bandwidth (EAB max) of 3.0 GHz at a simulated thickness of 1.0 mm and a minimum reflection loss (RL min) of −30.5 dB. Off-axis electron holography reveals pronounced charge accumulation at the Ta 2O 5 shell/TaC core interface, indicative of interfacial polarization effects. Furthermore, radar scattering cross-section (RCS) simulations demonstrate substantial attenuation of the backscattered signal from a perfect electric conductor (PEC) substrate coated with the TaC layer, with the strongest electromagnetic energy dissipation observed at a coating thickness of 1.0 mm. These results underscore the viability of microwave-assisted synthesis as an efficient and sustainable route for producing high-performance TaC nanorods for EMW absorption applications under extreme thermal conditions.

Original languageEnglish
Article number9221130
Number of pages28
JournalJournal of Advanced Ceramics
Volume14
Issue number8
Early online date28 Aug 2025
DOIs
Publication statusPublished - 31 Aug 2025

Data Availability Statement

The data that support the findings of this study are available from the corresponding author upon reasonable request.

Funding

This work was supported by the National Natural Science Foundation of China (Nos. U24A20101 and 52202072), the Natural Science Foundation Outstanding Youth Fund Project of Henan Province (No. 242300421009), the Natural Science Foundation of Henan Province (No. 242300421056), the China Postdoctoral Science Foundation (No. 2024M760816), the Henan Province Science and Technology Research Project (No. 252102231066), the Youth Research Funds Plan of Zhengzhou University of Aeronautics (No. 25ZHQN01020), and the Henan Province Engineering Research Center of Efficient Use of New Energy of Low Carbon Technologies (No. JDDT2024-09).

FundersFunder number
Henan Province Engineering Research Center
Natural Science Foundation Outstanding Youth Fund Project of Henan Province242300421009
China Postdoctoral Science Foundation2024M760816
National Natural Science Foundation of China52202072, U24A20101
Natural Science Foundation of Henan Province242300421056
Low Carbon TechnologiesJDDT2024-09
Zhengzhou University25ZHQN01020
Henan Provincial Science and Technology Research Project252102231066

    Keywords

    • carbothermal reduction
    • electromagnetic wave (EMW) absorption
    • microwave heating
    • molten salt-assisted
    • tantalum carbide (TaC) nanorods

    ASJC Scopus subject areas

    • Electronic, Optical and Magnetic Materials
    • Ceramics and Composites

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