材料科学
涂层
复合材料
韧性
热导率
激光器
陶瓷
热障涂层
断裂韧性
立方氧化锆
低发射率
发射率
光学涂层
损伤容限
微观结构
光电子学
热的
折射率
结构材料
散射
玻璃陶瓷
表面能
压力(语言学)
作者
Xinrui Zhao,Shuqi Wang,Yongchun Zou,Guoliang Chen,Zhiyun Ye,Jianzheng Cui,Xiang Li,Yaming Wang,Jia‐Hu Ouyang,Dechang Jia,Yu Zhou
出处
期刊:Small
[Wiley]
日期:2025-10-07
卷期号:21 (45): e08424-e08424
被引量:1
标识
DOI:10.1002/smll.202508424
摘要
Developing ceramic coatings with high reflectivity, emissivity, and mechanical robustness is critical for enhancing laser protection and thermal management in various optical precision instruments and engineering equipment. However, insufficient optical and mechanical performance causes heat accumulation and fracture under thermomechanical stress that can lead to catastrophic failure. Herein, a scalable ZrO2-Al2O3 heterostructured coating featuring anti-laser ablation, thermal management, and toughness is fabricated via a facile yet effective strategy. The multiple scattering of the micro-convex structure on the coating surface and the refractive index mismatching at the heterogeneous interface enhance its reflectivity to 92% (780-2500 nm), while the enlarged effective radiation area improves its emissivity to 0.93 (8-25 µm). The combination of high reflectivity and low thermal conductivity of 0.6 W/(m K) enables the coating to achieve a laser damage threshold of 637 W cm-2 for 35 s, reducing the damage depth by 35.46% compared to a single Al2O3 coating. Notably, the fracture toughness of the coating reaches 6.77 MPa m1/2 due to the synergistic effects of zirconia phase transformation toughening and heterogeneous interface energy absorption. These characteristics make the ZrO2-Al2O3 heterostructured coating potential protective materials for various laser protection and thermal management applications.
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