English

Self-repairing high entropy oxides

Materials Science 2021-12-23 v1

Abstract

All biological organisms, from plants to living creatures, can heal minor wounds and damage. The realization of a similar self-healing capacity in inorganic materials has been a design target for many decades. This would represent a breakthrough in materials engineering, enabling many novel technological applications, since such materials would be able to resist damage caused by electromagnetic irradiation and/or mechanical impact. Here we demonstrate that a high-entropy oxide is intrinsically capable of undergoing an autonomous self-repairing process. Transmission electron microscopy revealed that the spinel structure of (AlCoCrCu0.5FeNi)3O4 can regrow and repair itself at the atomic level when damaged. Density functional theory calculations reveal that the extra enthalpy stored in the high entropy material during fabrication can be released to effectively heal macroscopic defects by regrowing into a partially ordered state. This extraordinary self-repairing phenomenon makes this new material highly desirable as a coating, enabling structures used in harsh environments to better withstand damage, such as cosmic irradiation in space, nuclear irradiation in nuclear power facilities, or tribological damage. Most importantly, our results set the general design principles for the synthesis of self-repairing materials.

Keywords

Cite

@article{arxiv.2112.11747,
  title  = {Self-repairing high entropy oxides},
  author = {Zongwen Liu and Pengru Huang and Lixian Sun and Yanping Liu and Jiangtao Qu and Julie Cairney and Zhong Zheng and Zhiming M. Wang and Naveed A. Khan and Zhiping Lai and Li Fu and Bing Teng and Cuifeng Zhou and Hong Zhao and Fen Xu and Pan Xiong and Junwu Zhu and Peng Yuan and Kosta Tsoutas and Behnam Akhavan and Marcela M. Bilek and Simon P. Ringer and Kostya S. Novoselov},
  journal= {arXiv preprint arXiv:2112.11747},
  year   = {2021}
}

Comments

12 pages,4 figures

R2 v1 2026-06-24T08:27:32.931Z