作为天然纤维复合材料的鳞片:结构、矿物分布和机械性能的微观异质性

IF 3.6 3区 生物学 Q1 BIOLOGY Interface Focus Pub Date : 2024-06-01 DOI:10.1098/rsfs.2023.0074
Yiming Tan, Zian Jia, Zhifei Deng, Ling Li
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引用次数: 1

摘要

纤毛鱼的鳞片是天然纤维复合材料兼具柔韧性和保护性的典范。然而,有关单个鳞片内部潜在的结构、化学和机械异质性的研究却十分有限。本研究对作为天然纤维复合材料的黑鼓鱼(Pogonias cromis)鳞片内部不同区域的鳞片进行了系统表征,重点关注微观结构异质性和相应的机械效应。鳞片中心的聚焦场呈现出经典的三层胶原蛋白复合设计,由矿化的最外层限制层、中间的外部弹力层和未矿化的内部弹力层组成。相比之下,鳞片前端的喙场呈现双层设计:矿化的最外层限制层在外表面呈现弧形切面,内部的弹力层由交替矿化水平的胶原纤维子层组成。化学和纳米压痕分析表明,矿化水平与局部纳米力学性能之间存在密切联系。比较有限元建模显示,喙场鳞片在凹和凸弯曲下都具有更高的柔韧性。此外,内部氨甲蝶呤层中孤立的曼德氏体的几何形状不断变化,从不规则形状过渡到八面体刻面,这表明了矿化生长和空间填充的机制,在生长过程中增厚了鳞片中的矿化层,从而增强了相邻胶原纤维层之间的结合强度。这项研究为了解单个纤网鳞片的结构变化提供了新的视角,为具有局部适应功能要求的生物启发纤维复合材料设计提供了策略。
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Elasmoid fish scales as a natural fibre composite: microscopic heterogeneities in structure, mineral distribution, and mechanical properties
The elasmoid scales in teleost fish serve as exemplary models for natural fibre composites with integrated flexibility and protection. Yet, limited research has been focused on the potential structural, chemical, and mechanical heterogeneity within individual scales. This study presents systematic characterizations of the elasmoid scales from black drum fish (Pogonias cromis) at different zones within individual scales as a natural fibre composite, focusing on the microscopic structural heterogeneities and corresponding mechanical effects. The focus field at the centre of the scales exhibits a classical tri-layered collagen-based composite design, consisting of the mineralized outermost limiting layer, external elasmodine layer in the middle, and the unmineralized internal elasmodine layer. In comparison, the rostral field at the anterior end of the scales exhibits a two-layered design: the mineralized outermost limiting layer exhibits radii sections on the outer surface, and the inner elasmodine layer consists of collagen fibre-based sublayers with alternating mineralization levels. Chemical and nanoindentation analysis suggests a close correlation between the mineralization levels and the local nanomechanical properties. Comparative finite element modelling shows that the rostral-field scales achieve increased flexibility under both concave and convex bending. Moreover, the evolving geometries of isolated Mandle’s corpuscles in the internal elasmodine layer, transitioning from irregular shapes to faceted octahedrons, suggest the mechanisms of mineral growth and space-filling to thicken the mineralized layers in scales during growth, which enhances the bonding strength between the adjacent collagen fibre layers. This work offers new insights into the structural variations in individual elasmoid scales, providing strategies for bioinspired fibre composite designs with local-adapted functional requirements.
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来源期刊
Interface Focus
Interface Focus BIOLOGY-
CiteScore
9.20
自引率
0.00%
发文量
44
审稿时长
6-12 weeks
期刊介绍: Each Interface Focus themed issue is devoted to a particular subject at the interface of the physical and life sciences. Formed of high-quality articles, they aim to facilitate cross-disciplinary research across this traditional divide by acting as a forum accessible to all. Topics may be newly emerging areas of research or dynamic aspects of more established fields. Organisers of each Interface Focus are strongly encouraged to contextualise the journal within their chosen subject.
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