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Multi-scale thermal stability of a hard thermoplastic protein-based material

机译:硬质热塑性蛋白基材料的多尺度热稳定性

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Although thermoplastic materials are mostly derived from petro-chemicals, it would be highly desirable, from a sustainability perspective, to produce them instead from renewable biopolymers. Unfortunately, biopolymers exhibiting thermoplastic behaviour and which preserve their mechanical properties post processing are essentially non-existent. The robust sucker ring teeth (SRT) from squid and cuttlefish are one notable exception of thermoplastic biopolymers. Here we describe thermoplastic processing of squid SRT via hot extrusion of fibres, demonstrating the potential suitability of these materials for large-scale thermal forming. Using high-resolution in situ X-ray diffraction and vibrational spectroscopy, we elucidate the molecular and nanoscale features responsible for this behaviour and show that SRT consist of semi-crystalline polymers, whereby heat-resistant, nanocrystalline β-sheets embedded within an amorphous matrix are organized into a hexagonally packed nanofibrillar lattice. This study provides key insights for the molecular design of biomimetic protein- and peptide-based thermoplastic structural biopolymers with potential biomedical and 3D printing applications.
机译:尽管热塑性材料主要来自石油化工产品,但从可持续性的角度来看,非常希望由可再生生物聚合物生产它们。不幸的是,基本上不存在表现出热塑性行为并且在加工后保持其机械性能的生物聚合物。鱿鱼和墨鱼的坚固吸盘齿(SRT)是热塑性生物聚合物的一个明显例外。在这里,我们描述了通过热挤压纤维对鱿鱼SRT进行热塑性加工,证明了这些材料对于大规模热成型的潜在适用性。使用高分辨率原位X射线衍射和振动光谱法,我们阐明了造成这种行为的分子和纳米尺度特征,并表明SRT由半结晶聚合物组成,从而使耐热的纳米晶β片层嵌入无定形基质中被组织成六角形堆积的纳米原纤维晶格。这项研究为仿生蛋白质和肽基热塑性结构生物聚合物的分子设计提供了重要的见识,具有潜在的生物医学和3D打印应用程序。

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