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通过将马兰戈尼流与原位沉积相结合实现宽带超低反射率表面的热辅助激光制造。

Thermal-Assisted Laser Fabrication of Broadband Ultralow Reflectance Surface by Combining Marangoni Flow with In Situ Deposition.

作者信息

Yin Jingbo, Yan Huangping, Zhou Rui, Li Yuanzhe, He Anna

机构信息

School of Aerospace Engineering, Xiamen University, Xiamen 361005, China.

Shenzhen Research Institute of Xiamen University, Shenzhen 518000, China.

出版信息

Nanomaterials (Basel). 2023 Jan 25;13(3):480. doi: 10.3390/nano13030480.

Abstract

Functional surfaces with broadband ultralow optical reflectance have many potential applications in the fields of enhancing solar energy utilization, stray light shielding, infrared stealth, and so on. To fabricate broadband anti-reflection surfaces with low cost, high quality, and more controllability, a strategy of preparing multi-scale structures by thermal-assisted nanosecond laser was proposed. This strategy combines laser ablation with Marangoni flow of molten materials and in situ deposition of nanoparticles. The thermal-assisted strategy increases the depth to width ratio of the anti-reflection structures. The average reflectance of laser-textured TC4 (Ti-6Al-4V) surface is as low as 1.71% in the wavelength range of 200-2250 nm and 7.8% in the 2500-25,000 nm. The ultra-low reflectance surface has a significantly enhanced photothermal conversion performance. Meanwhile, the anti-reflection effect can be extended to the mid-infrared band, which has potential stealth application prospect. This synergetic manufacturing strategy has wide adaptability of materials, which provides new paths for the preparation of broadband ultralow reflectance surface. Moreover, this thermal-assisted laser fabrication strategy is prospective in the preparation of other functional micro-nano structures.

摘要

具有宽带超低光学反射率的功能表面在提高太阳能利用、杂散光屏蔽、红外隐身等领域有许多潜在应用。为了低成本、高质量且更可控地制备宽带抗反射表面,提出了一种通过热辅助纳秒激光制备多尺度结构的策略。该策略将激光烧蚀与熔融材料的马兰戈尼流以及纳米颗粒的原位沉积相结合。热辅助策略增加了抗反射结构的深宽比。在200 - 2250 nm波长范围内,激光纹理化的TC4(Ti - 6Al - 4V)表面的平均反射率低至1.71%,在2500 - 25000 nm范围内为7.8%。这种超低反射率表面具有显著增强的光热转换性能。同时,抗反射效果可扩展到中红外波段,具有潜在的隐身应用前景。这种协同制造策略对材料具有广泛的适应性,为宽带超低反射率表面的制备提供了新途径。此外,这种热辅助激光制造策略在制备其他功能微纳结构方面具有前瞻性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5cdb/9920263/2c234882aa9b/nanomaterials-13-00480-g001.jpg

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