J. Mater. Sci. Technol. ›› 2026, Vol. 260: 186-196.DOI: 10.1016/j.jmst.2025.09.065

• Research Article • Previous Articles     Next Articles

Medium-entropy core-shell (Zr, Ta, Ti)C@C ceramics for efficient electromagnetic wave absorption

Zhang Xuemenga, Zhang Yuyua, Fan Kaifeia, Feldmann Laurab, Riedel Ralfb, Sun Jiaa,*, Li Hejuna,*   

  1. aScience and Technology on Thermostructural Composite Materials Laboratory, Shaanxi Key Laboratory of Fiber Reinforced Light Composite Materials, Northwestern Polytechnical University, Xi’an 710072, China;
    bTechnische Universität Darmstadt, Institut für Materialwissenschaft, Otto-Berndt-Straße 3, D-64287, Darmstadt, Germany
  • Received:2025-07-13 Revised:2025-09-09 Accepted:2025-09-10 Published:2026-07-20 Online:2025-10-21
  • Contact: *E-mail addresses: j.sun@nwpu.edu.cn (J. Sun), lihejun@nwpu.edu.cn (H. Li)

Abstract: The increasing challenges of electromagnetic interference and radiation pollution urgently demand the development of advanced electromagnetic wave absorption materials with excellent high-temperature stability. Medium- and high-entropy ceramics, owing to their tunable compositions and unique high-entropy effects, have attracted growing attention. In this work, novel core-shell structured (Zr, Ta, Ti)C@C ceramics were successfully synthesized via a combination of polymer-derived ceramics method and solvothermal reaction. The microstructural evolution, carbon shell formation mechanism, dielectric properties, and electromagnetic wave absorption performance of (Zr, Ta, Ti)C@C were systematically investigated. The results show that the (Zr, Ta, Ti)C/paraffin composites achieve a minimum reflection loss (RLmin) of -57.19 dB at a thickness of 1.92 mm, with an effective absorption bandwidth (EAB) of 3.62 GHz at a filler loading of 40 wt.%. With the formation of the carbon shell, (Zr, Ta, Ti)C@C/paraffin composites maintains an outstanding RLmin of -57.11 dB and achieves full X-band coverage with only 20 wt.% filler loading. The construction of the carbon shell effectively enhances interfacial polarization and dielectric loss, optimizes impedance matching, and thus significantly boosts the electromagnetic wave absorption performance. This study provides a promising strategy for designing high-performance core-shell structured medium-entropy ceramics for electromagnetic absorption applications.

Key words: Medium-entropy ceramics, Core-shell structure, Polymer-derived ceramics method, Electromagnetic wave absorption