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从仿生学角度看微纳尺度表面结构的制造设计、分析及其性能应用

The Design and Analysis of the Fabrication of Micro- and Nanoscale Surface Structures and Their Performance Applications from a Bionic Perspective.

作者信息

Zheng Haohua, Liu Jiawei, Qiu Yake

机构信息

Architecture and Design College, Nanchang University, Nanchang 330031, China.

出版信息

Materials (Basel). 2024 Aug 12;17(16):4014. doi: 10.3390/ma17164014.

Abstract

This paper comprehensively discusses the fabrication of bionic-based ultrafast laser micro-nano-multiscale surface structures and their performance analysis. It explores the functionality of biological surface structures and the high adaptability achieved through optimized self-organized biomaterials with multilayered structures. This study details the applications of ultrafast laser technology in biomimetic designs, particularly in preparing high-precision, wear-resistant, hydrophobic, and antireflective micro- and nanostructures on metal surfaces. Advances in the fabrications of laser surface structures are analyzed, comparing top-down and bottom-up processing methods and femtosecond laser direct writing. This research investigates selective absorption properties of surface structures at different scales for various light wavelengths, achieving coloring or stealth effects. Applications in dirt-resistant, self-cleaning, biomimetic optical, friction-resistant, and biocompatible surfaces are presented, demonstrating potential in biomedical care, water-vapor harvesting, and droplet manipulation. This paper concludes by highlighting research frontiers, theoretical and technological challenges, and the high-precision capabilities of femtosecond laser technology in related fields.

摘要

本文全面讨论了基于仿生的超快激光微纳多尺度表面结构的制造及其性能分析。它探讨了生物表面结构的功能以及通过具有多层结构的优化自组装生物材料实现的高适应性。本研究详细介绍了超快激光技术在仿生设计中的应用,特别是在金属表面制备高精度、耐磨、疏水和抗反射的微纳结构方面。分析了激光表面结构制造方面的进展,比较了自上而下和自下而上的加工方法以及飞秒激光直接写入。本研究调查了不同尺度的表面结构对各种光波长的选择性吸收特性,实现了着色或隐身效果。介绍了在抗污、自清洁、仿生光学、耐磨和生物相容性表面方面的应用,展示了其在生物医学护理、水汽收集和液滴操纵方面的潜力。本文最后强调了研究前沿、理论和技术挑战以及飞秒激光技术在相关领域的高精度能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3a8a/11356519/43422e1287b4/materials-17-04014-g001.jpg

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