Journal of Inorganic Materials ›› 2026, Vol. 41 ›› Issue (8): 1103-1109.DOI: 10.15541/jim20250386

• RESEARCH ARTICLE • Previous Articles     Next Articles

Fabrication and Properties of Magnetoplumbite-type Rare-earth Hexaaluminate Thermal Barrier Coating Materials

XU Mingyi1(), XIONG Ying2, WANG Bo2, ZHANG Yixin2, CHEN Wenbo3(), CAO Xueqiang3   

  1. 1 Guizhou Advanced Functional Coatings Innovation Center of THL, Guiyang 550000, China
    2 AECC Shenyang Liming Aero-Engine Corporation Ltd., Shenyang 110043, China
    3 State Key Laboratory of Silicate Materials for Architectures, Wuhan University of Technology, Wuhan 430070, China
  • Received:2025-10-02 Revised:2025-12-04 Published:2026-08-20 Online:2025-12-11
  • Contact: CHEN Wenbo, professor. E-mail: wchen@whut.edu.cn
  • About author:XU Mingyi (1996-), male, PhD candidate. E-mail: xumingyi96925@163.com
  • Supported by:
    National Natural Science Foundation of China(92360304);National Natural Science Foundation of China(52302109);Natural Science Foundation of Hubei Province, China(2023AFB075);National Natural Science Foundation of China(92060201)

Abstract:

Magnetoplumbite-type rare-earth hexaaluminates RMgAl11O19 (RMA, R=La, Pr, Nd, Sm, Gd) emerged as promising candidates for next-generation thermal barrier coatings (TBCs) capable of operating at temperatures exceeding 1300 ℃, owing to their high melting points, low thermal conductivity, and remarkable sintering resistance. To elucidate the influence of rare-earth ion substitution on the structural and functional properties, a series of single rare-earth cation substituted RMA ceramics were synthesized via a solid-state reaction route and densified using spark plasma sintering. Their phase composition, microstructure, thermophysical, and infrared radiative properties were systematically characterized by different measurements. All samples crystallize in a hexagonal magnetoplumbite-type structure, with both lattice parameters and unit cell volumes exhibiting a gradual contraction as the rare-earth ionic radius decreases. The grain growth rate generally increases with a reduction in ionic radius. The thermal diffusivity and conductivity of RMA ceramics decrease with increasing temperature, reaching a minimum of 2.86-3.19 W/(m·K) in the temperature range of 25-1000 ℃. The average thermal expansion coefficients vary from 8.22×10-6 to 8.70×10-6 K-1 between 200 and 1300 ℃, indicating comparable thermo-physical properties across different compositions. In contrast, notable differences appear in the 3-5 μm infrared band, where PrMA exhibits the highest average emissivity (0.746) and LaMA exhibits the lowest (0.493), reflecting the critical role of rare-earth cation electronic structure in radiative behavior. This work elucidates the coupled thermal-radiative modulation mechanism induced by rare-earth ion substitution in magnetoplumbite-type hexaaluminates, offering valuable insights for the design of high-temperature TBC materials that combine low thermal conductivity with high infrared radiative performance.

Key words: thermal barrier coating, RMgAl11O19, grain growth rate, thermo-physical property, infrared radiation property

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