Fu Siqi, Zhang Wang, Wu Yu, Tian Junlong, Liu Qinglei, Gu Jiajun, Song Fang, Osotsi Maurice I, Zhang Di
State Key Laboratory of Metal Matrix Composites, School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, P. R. China.
Research Institute of Chemical Defense, Academy of Military Sciences PLA China, Beijing 102205, P. R. China.
ACS Appl Mater Interfaces. 2022 Feb 16;14(6):8464-8472. doi: 10.1021/acsami.1c23879. Epub 2022 Feb 4.
Continuous development and advancement in modern detection technologies have increased the demand for multiband (e.g., visual and infrared) compatible camouflage. However, challenges exist in the requirements of incompatible structure resulting from the adaptation to different camouflage effects. This study is inspired by the light absorption structure of butterfly wing scales and demonstrates a porous anodic alumina/aluminum flake powder material prepared by a microscopic powder anodic oxidation technique for visual and infrared camouflage. The fabricated structures manipulate a compromise condition for visual camouflage by low reflectance (̅ = 0.32) and dual-band infrared camouflage by low emission (ε̅ = 0.081 and ε̅ = 0.085). Further, the characteristic of short-range disorder in these bioinspired structures allows maintenance of the camouflage performance under omnidirectional detection (0-60°). This study provides new insight and a feasible method for coordinated manipulation of electromagnetic waves via bioinspired structural design and improved fabrication.
现代探测技术的不断发展和进步增加了对多波段(如可见光和红外)兼容伪装的需求。然而,由于要适应不同的伪装效果,在不相容结构的要求方面存在挑战。本研究受蝴蝶翅膀鳞片的光吸收结构启发,展示了一种通过微观粉末阳极氧化技术制备的用于可见光和红外伪装的多孔阳极氧化铝/铝片状粉末材料。所制备的结构通过低反射率(̅ = 0.32)实现了可见光伪装的折衷条件,并通过低发射率(ε̅ = 0.081和ε̅ = 0.085)实现了双波段红外伪装。此外,这些仿生结构中的短程无序特性使得在全向探测(0 - 60°)下仍能保持伪装性能。本研究通过仿生结构设计和改进制造为电磁波的协同操控提供了新的见解和可行方法。