南方家蜘蛛(Kukulcania hibernalis)生产的蚕丝纤维复合材料的分层缠绕使其具有极高的延展性

IF 3.6 3区 生物学 Q1 BIOLOGY Interface Focus Pub Date : 2024-06-01 DOI:10.1098/rsfs.2023.0071
Daniele Liprandi, Martín Ramírez, Sascha Schlüter, Lucas Baumgart, Anna-Christin Joel, Peter Michalik, Jonas O. Wolff
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引用次数: 1

摘要

蜘蛛丝是一种坚韧且用途广泛的生物材料,通过纳米复合结构及其非线性弹性行为,将高抗拉强度和可延展性结合在一起。值得注意的是,蜘蛛很少单独使用单根丝纤维,而是将其加工成更复杂的复合材料,如丝纤维束、片和锚,其中涉及喷丝头、腿和身体的综合运动。虽然人们对单根丝纤维的材料特性进行了广泛研究,但对丝复合材料和元结构的机械特性却知之甚少,而且在受生物启发设计具有出色机械特性的新型织物方面,这些材料的潜力尚未得到开发。在这项研究中,我们报告了南方家蛛(Kukulcania hibernalis)粘性捕获丝的拉伸力学特性,这种丝具有极高的延展性,是球织蜘蛛粘性捕获丝的十倍。通过结合高分辨率机械测试、显微镜和基于分层修改版纤维束模型的硅学实验,我们证明了极强的延展性是基于线性和盘绕元素相结合的分层环上环结构。环状结构的逐步展开会导致连接的线性纤维反复断裂,从而延迟终端失效并增强能量吸收。这一原理可用于定制织物和材料,使其能够承受高变形而不失效。
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Hierarchical looping results in extreme extensibility of silk fibre composites produced by Southern house spiders (Kukulcania hibernalis)
Spider silk is a tough and versatile biological material combining high tensile strength and extensibility through nanocomposite structure and its nonlinear elastic behaviour. Notably, spiders rarely use single silk fibres in isolation, but instead process them into more complex composites, such as silk fibre bundles, sheets and anchorages, involving a combination of spinneret, leg and body movements. While the material properties of single silk fibres have been extensively studied, the mechanical properties of silk composites and meta-structures are poorly understood and exhibit a hereto largely untapped potential for the bio-inspired design of novel fabrics with outstanding mechanical properties. In this study, we report on the tensile mechanics of the adhesive capture threads of the Southern house spider (Kukulcania hibernalis), which exhibit extreme extensibility, surpassing that of the viscid capture threads of orb weavers by up to tenfold. By combining high-resolution mechanical testing, microscopy and in silico experiments based on a hierarchical modified version of the Fibre Bundle Model, we demonstrate that extreme extensibility is based on a hierarchical loops-on-loops structure combining linear and coiled elements. The stepwise unravelling of the loops leads to the repeated fracture of the connected linear fibres, delaying terminal failure and enhancing energy absorption. This principle could be used to achieve tailored fabrics and materials that are able to sustain high deformation without failure.
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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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