Surface morphology and microstructure of Bauhinia variegata L. flowers and leaves

IF 2.5 3区 工程技术 Q1 MICROSCOPY
Yan Xu
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Abstract

The main purpose of this research is to characterize the wettability and microstructure of Bauhinia variegata L. flowers and leaves, aiming to provide a biological template for the preparation of hydrophobic surfaces. The contact angle test results show that the surfaces of flowers and leaves are hydrophobic, and the contact angle of the adaxial side and abaxial side of the leaves is highly significant difference, which is mainly affected by the topological morphology of the surface microstructure. The topological structure of flower and leaf surface morphology was revealed by scanning electron microscopy (SEM) and super-depth of field three-dimensional microscope. The results showed that the cell structure of flower surface array was the main factor leading to the hydrophobicity of flowers. The snowflake-like structure on the leaf surface is the main factor leading to hydrophobicity of leaves, and the burr structure of the micro-nano dual-level structure unique to the abaxial side of the leaf further enhances the hydrophobicity of the abaxial side, and the contact angle increases, resulting in a highly significant difference in wettability between the adaxial side and abaxial side. This provides an important biological template and reference value for the preparation of biomimetic materials.

洋紫荆花和叶的表面形态和微观结构
本研究的主要目的是表征变叶紫荆花和叶片的润湿性和微观结构,旨在为制备疏水表面提供生物模板。接触角测试结果表明,花和叶片表面都具有疏水性,叶片正面和背面的接触角差异非常显著,这主要受表面微结构拓扑形态的影响。通过扫描电子显微镜(SEM)和超景深三维显微镜揭示了花叶表面形态的拓扑结构。结果表明,花朵表面阵列的细胞结构是导致花朵疏水性的主要因素。叶片表面的雪花状结构是导致叶片疏水性的主要因素,而叶片背面特有的微纳米双层结构的毛刺结构进一步增强了背面的疏水性,接触角增大,导致正面和背面的润湿性差异非常显著。这为制备仿生物材料提供了重要的生物模板和参考价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Micron
Micron 工程技术-显微镜技术
CiteScore
4.30
自引率
4.20%
发文量
100
审稿时长
31 days
期刊介绍: Micron is an interdisciplinary forum for all work that involves new applications of microscopy or where advanced microscopy plays a central role. The journal will publish on the design, methods, application, practice or theory of microscopy and microanalysis, including reports on optical, electron-beam, X-ray microtomography, and scanning-probe systems. It also aims at the regular publication of review papers, short communications, as well as thematic issues on contemporary developments in microscopy and microanalysis. The journal embraces original research in which microscopy has contributed significantly to knowledge in biology, life science, nanoscience and nanotechnology, materials science and engineering.
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