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Nanoconfinement of Spider Silk Fibrils Begets Superior Strength, Extensibility, and Toughness

机译:蜘蛛丝原纤维的纳米细化具有优异的强度,延展性和韧性

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摘要

Silk is an exceptionally strong, extensible, and tough material made from simple protein building blocks. The molecular structure of dragline spider silk repeat units consists of semiamorphous and nanocrystalline β-sheet protein domains. Here we show by a series of computational experiments how the nanoscale properties of silk repeat units are scaled up to create macroscopic silk fibers with outstanding mechanical properties despite the presence of cavities, tears, and cracks. We demonstrate that the geometric confinement of silk fibrils to diameters of 50 ± 30 nm is critical to facilitate a powerful mechanism by which hundreds of thousands of protein domains synergistically resist deformation and failure to provide enhanced strength, extensibility, and toughness at the macroscale, closely matching experimentally measured mechanical properties. Through this mechanism silk fibers exploit the full potential of the nanoscale building blocks, regardless of the details of microscopic loading conditions and despite the presence of large defects. Experimental results confirm that silk fibers are composed of silk fibril bundles with diameters in the range of 20–150 nm, in agreement with our predicted length scale. Our study reveals a general mechanism to map nanoscale properties to the macroscale and provides a potent design strategy toward novel fiber and bulk nanomaterials through hierarchical structures.
机译:丝绸是一种由简单的蛋白质构件制成的异常坚固,可扩展且坚韧的材料。拉铲蜘蛛蜘蛛丝重复单元的分子结构由半非晶和纳米晶的β-折叠蛋白结构域组成。在这里,我们通过一系列计算实验展示了如何扩大丝绸重复单元的纳米级性能,以创建具有出色机械性能的宏观丝纤维,尽管存在空洞,撕裂和裂缝。我们证明了将丝原纤维的几何范围限制在50±30 nm的直径对于建立一个强大的机制至关重要,通过该机制,成千上万的蛋白质结构域协同抵抗变形和破坏,无法在宏观上紧密地提供增强的强度,可扩展性和韧性。匹配实验测量的机械性能。通过这种机制,无论微观加载条件的细节如何,而且存在大量缺陷,丝纤维都可以充分利用纳米级构造块的潜力。实验结果证实,丝纤维由直径在20-150 nm范围内的丝纤维束组成,与我们预测的长度范围一致。我们的研究揭示了将纳米尺度的特性映射到宏观尺度的一般机制,并通过分层结构为新型纤维和块状纳米材料提供了有效的设计策略。

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