Tensegrity Modelling and the High Toughness of Spider Dragline Silk
This work establishes a tensegrity model of spider dragline silk. Tensegrity systems are ubiquitous in nature, being able to capture the mechanics of biological shapes through simple and effective modes of deformation via extension and contraction. Guided by quantitative microstructural characteriza...
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doaj-a24c75cb749842fa9203ab24f8aee2dc2020-11-25T03:25:52ZengMDPI AGNanomaterials2079-49912020-07-01101510151010.3390/nano10081510Tensegrity Modelling and the High Toughness of Spider Dragline SilkFernando Fraternali0Nicola Stehling1Ada Amendola2Bryan Andres Tiban Anrango3Chris Holland4Cornelia Rodenburg5Department of Civil Engineering, University of Salerno, 84084 Fisciano (SA), ItalyDepartment of Materials Science & Engineering, University of Sheffield, Sir Robert Hadfield Building, Mappin Street, Sheffield S1 3JD, UKDepartment of Civil Engineering, University of Salerno, 84084 Fisciano (SA), ItalyCentre for Biomedical and Chemical Science School of Science, Auckland University of Technology, Auckland 1010, New ZealandDepartment of Materials Science & Engineering, University of Sheffield, Sir Robert Hadfield Building, Mappin Street, Sheffield S1 3JD, UKDepartment of Materials Science & Engineering, University of Sheffield, Sir Robert Hadfield Building, Mappin Street, Sheffield S1 3JD, UKThis work establishes a tensegrity model of spider dragline silk. Tensegrity systems are ubiquitous in nature, being able to capture the mechanics of biological shapes through simple and effective modes of deformation via extension and contraction. Guided by quantitative microstructural characterization via air plasma etching and low voltage scanning electron microscopy, we report that this model is able to capture experimentally observed phenomena such as the Poisson effect, tensile stress-strain response, and fibre toughness. This is achieved by accounting for spider silks’ hierarchical organization into microfibrils with radially variable properties. Each fibril is described as a chain of polypeptide tensegrity units formed by crystalline granules operating under compression, which are connected to each other by amorphous links acting under tension. Our results demonstrate, for the first time, that a radial variability in the ductility of tensegrity chains is responsible for high fibre toughness, a defining and desirable feature of spider silk. Based on this model, a discussion about the use of graded tensegrity structures for the optimal design of next-generation biomimetic fibres is presented.https://www.mdpi.com/2079-4991/10/8/1510spider silkscanning electron microscopyplasma etchingmesoscale modellingtensegrity systemsbiomimetic fibres |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Fernando Fraternali Nicola Stehling Ada Amendola Bryan Andres Tiban Anrango Chris Holland Cornelia Rodenburg |
spellingShingle |
Fernando Fraternali Nicola Stehling Ada Amendola Bryan Andres Tiban Anrango Chris Holland Cornelia Rodenburg Tensegrity Modelling and the High Toughness of Spider Dragline Silk Nanomaterials spider silk scanning electron microscopy plasma etching mesoscale modelling tensegrity systems biomimetic fibres |
author_facet |
Fernando Fraternali Nicola Stehling Ada Amendola Bryan Andres Tiban Anrango Chris Holland Cornelia Rodenburg |
author_sort |
Fernando Fraternali |
title |
Tensegrity Modelling and the High Toughness of Spider Dragline Silk |
title_short |
Tensegrity Modelling and the High Toughness of Spider Dragline Silk |
title_full |
Tensegrity Modelling and the High Toughness of Spider Dragline Silk |
title_fullStr |
Tensegrity Modelling and the High Toughness of Spider Dragline Silk |
title_full_unstemmed |
Tensegrity Modelling and the High Toughness of Spider Dragline Silk |
title_sort |
tensegrity modelling and the high toughness of spider dragline silk |
publisher |
MDPI AG |
series |
Nanomaterials |
issn |
2079-4991 |
publishDate |
2020-07-01 |
description |
This work establishes a tensegrity model of spider dragline silk. Tensegrity systems are ubiquitous in nature, being able to capture the mechanics of biological shapes through simple and effective modes of deformation via extension and contraction. Guided by quantitative microstructural characterization via air plasma etching and low voltage scanning electron microscopy, we report that this model is able to capture experimentally observed phenomena such as the Poisson effect, tensile stress-strain response, and fibre toughness. This is achieved by accounting for spider silks’ hierarchical organization into microfibrils with radially variable properties. Each fibril is described as a chain of polypeptide tensegrity units formed by crystalline granules operating under compression, which are connected to each other by amorphous links acting under tension. Our results demonstrate, for the first time, that a radial variability in the ductility of tensegrity chains is responsible for high fibre toughness, a defining and desirable feature of spider silk. Based on this model, a discussion about the use of graded tensegrity structures for the optimal design of next-generation biomimetic fibres is presented. |
topic |
spider silk scanning electron microscopy plasma etching mesoscale modelling tensegrity systems biomimetic fibres |
url |
https://www.mdpi.com/2079-4991/10/8/1510 |
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