Suppr超能文献

基于相位空间整形飞秒激光的三维无掩模仿生单向液体扩展表面的制造。

Three-Dimensional Maskless Fabrication of Bionic Unidirectional Liquid Spreading Surfaces Using a Phase Spatially Shaped Femtosecond Laser.

机构信息

Laser Micro/Nano Fabrication Laboratory, School of Mechanical Engineering, Beijing Institute of Technology, Beijing 100081, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2021 Mar 24;13(11):13781-13791. doi: 10.1021/acsami.0c22080. Epub 2021 Mar 11.

Abstract

Ubiquitous biological processes exhibit the ability to achieve spontaneous directionally guided droplet transport. Maskless three-dimensional (3D) fabrication of various miniature bionic structures, a method applicable to various materials, is subject to processing method limitations. This remains a large obstacle to realizing self-driven, continuous, and controllable unidirectional liquid spreading. Thus, we present a flexible maskless 3D method for fabricating bionic unidirectional liquid spreading surfaces by using a phase spatially shaped femtosecond laser. The laser can be transformed from having Gaussian distributions to having 3D bionic structure field distributions. Furthermore, we fabricated bionic structures with a spiculate end for unidirectional water spreading; 1 μL droplets had a 16 mm flow length on Si surfaces when the single structure was 34 (length), 8 (width), and 12 μm (height). Furthermore, various bionic structures-, cactus, and moth structures-were fabricated on Si, SiO, and Ti. We also demonstrated the measurability of two-dimensional (S-shaped) curved flows on Si wafers as well as 3D curved flows on a Ti pipe turning 120° within 2320 ms. Our method can realize high-efficiency maskless 3D processing of various materials and structures (especially asymmetric structures); it is both flexible and fast, effectively expanding the processing capacity of micro-/nanostructures on patterned surfaces. This is of great significance to various domains such as microfluids, fog collection, and chemical reaction control.

摘要

普遍存在的生物过程表现出自发定向引导液滴传输的能力。掩模自由的三维(3D)制造各种微型仿生结构的方法适用于各种材料,但受到加工方法的限制。这仍然是实现自驱动、连续和可控的单向液体扩展的一大障碍。因此,我们提出了一种灵活的掩模自由的 3D 方法,通过使用相位空间整形飞秒激光来制造仿生单向液体扩展表面。激光可以从具有高斯分布转变为具有 3D 仿生结构场分布。此外,我们制造了具有刺状末端的仿生结构,用于单向水扩展;当单个结构为 34(长度)、8(宽度)和 12 μm(高度)时,在 Si 表面上,1 μL 的液滴具有 16 mm 的流动长度。此外,各种仿生结构、仙人掌和飞蛾结构都在 Si、SiO 和 Ti 上制造。我们还证明了在 Si 晶片上测量二维(S 形)弯曲流动以及在 Ti 管上测量 3D 弯曲流动的能力,Ti 管在 2320 ms 内转 120°。我们的方法可以实现各种材料和结构(特别是非对称结构)的高效掩模自由 3D 加工;它既灵活又快速,有效地扩展了图案化表面上微/纳结构的加工能力。这对于微流、雾收集和化学反应控制等各个领域都具有重要意义。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验