J. Mater. Sci. Technol. ›› 2025, Vol. 218: 153-169.DOI: 10.1016/j.jmst.2024.08.051

• Research Article • Previous Articles     Next Articles

Enhancing the radiation- and oxidation-resistance of Cr-based coatings via structure regulation and composition optimization

Renda Wanga,h, Nabil Daghboujb,*, Ping Yuc, Peng Lia,d,e, Fanping Menga,d, Antonio Cammaratab,*, Bingsheng Lif, P. Báborg, Tomas Polcarb, Qing Huanga,d, Fangfang Gea,d,e,*   

  1. aZhejiang 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;
    bDepartment of Control Engineering, Faculty of Electrical Engineering, Czech Technical University in Prague, Technická 2, 16000, Prague 6, Czech Republic;
    cSchool of Electronics and Information Engineering, Ningbo University of Technology, Ningbo 315211, China;
    dQianwan Institute of CNITECH, Ningbo 315336, China;
    eAdvanced Energy Science and Technology Guangdong Laboratory, Huizhou 516000, China;
    fState Key Laboratory for Environment-friendly Energy Materials, Southwest University of Science and Technology, Mianyang 621010, China;
    gCEITEC - Central European Institute of Technology, Brno University of Technology, Brno 61600, Czech Republic;
    hUniversity of Chinese Academy of Sciences, Beijing 100049 China
  • Received:2024-05-28 Revised:2024-07-23 Accepted:2024-08-26 Published:2025-05-20 Online:2024-10-22
  • Contact: *E-mail addresses: daghbnab@fel.cvut.cz (N. Daghbouj), cammaant@fel.cvut.cz (A. Cammarata), gefangfang@nimte.ac.cn (F. Ge)

Abstract: Cr coatings, as protective coatings of Zr-alloy fuel claddings, inevitably suffer from irradiation damage before they would possibly run into the accident condition. This study evaluates the radiation and oxidation tolerance of three Cr-based coatings with different microstructures (Cr, CrAlSi, and CrAlSiN) through He2+ ion irradiation and 1200 °C steam oxidation. The Cr and CrAlSi coatings experienced significant structural degradation, characterized by He bubble aggregation and amplified Kirkendall effects at elevated temperatures. In contrast, the irradiated CrAlSiN coating maintained structural integrity without measurable irradiation hardening. Following annealing at 800 °C for 30 min, approximately 40 % of injected He atoms were released, indicating a “self-healing” mechanism. The mechanism is attributed to uniformly distributed, low-density channels that act as sinks and release paths for irradiation-induced defects. Density functional theory simulations suggest that N atoms promote significant rearrangement of ions surrounding the free volume, inhibiting the formation of sites capable of trapping He atoms. Moreover, the CrAlSiN coating exhibited superior oxidation resistance compared to the Cr and CrAlSi coatings, even under high-temperature steam conditions. Notably, the irradiated CrAlSiN sample displayed a significantly thinner oxide scale compared to the pristine one (almost half), owing to a more protective oxide scale and rapid outward diffusion of Cr, Al, and Si through nanochannel veins. These findings illuminate the effects of structure and composition on irradiation and oxidation behavior in Cr-based coatings, offering insights for developing new-generation accident-tolerance fuel coatings for Zr-alloy claddings.

Key words: Cr-based coatings, Irradiation tolerance, Low-density nanochannels, Oxidation resistance, DFT