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Biomimetic composites with enhanced toughening using silk-inspired triblock proteins and aligned nanocellulose reinforcements

机译:仿生复合材料采用丝绸启发的三嵌段蛋白和对齐的纳米纤维素增强材料具有增强的增韧作用

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摘要

Silk and cellulose are biopolymers that show strong potential as future sustainable materials. They also have complementary properties, suitable for combination in composite materials where cellulose would form the reinforcing component and silk the tough matrix. A major challenge concerns balancing structure and functional properties in the assembly process. We used recombinant proteins with triblock architecture, combining structurally modified spider silk with terminal cellulose affinity modules. Flow alignment of cellulose nanofibrils and triblock protein allowed continuous fiber production. Protein assembly involved phase separation into concentrated coacervates, with subsequent conformational switching from disordered structures into β sheets. This process gave the matrix a tough adhesiveness, forming a new composite material with high strength and stiffness combined with increased toughness. We show that versatile design possibilities in protein engineering enable new fully biological materials and emphasize the key role of controlled assembly at multiple length scales for realization.
机译:丝绸和纤维素是生物聚合物,作为未来的可持续材料具有强大的潜力。它们还具有互补性,适合与复合材料结合使用,在复合材料中纤维素将形成增强成分,并丝化坚韧的基质。一个主要的挑战是在组装过程中平衡结构和功能特性。我们使用具有三嵌段结构的重组蛋白,将结构修饰的蜘蛛丝与末端纤维素亲和模块相结合。纤维素纳米原纤维和三嵌段蛋白的流动排列允许连续的纤维生产。蛋白质组装涉及相分离成浓缩的凝聚层,随后构象从无序结构转变为β片层。此过程使基体具有强韧性,形成了一种新的复合材料,具有高强度和刚度以及增加的韧性。我们证明了蛋白质工程中的多种设计可能性使新的完全生物学的材料成为可能,并强调了在实现多种长度标度的过程中受控装配的关键作用。

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