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Light, Strong, and Ductile Architectures Achieved by Silk Fiber “Welding” Processing

机译:通过丝绸纤维“焊接”加工实现的光,强,韧性架构

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Light, strong, and ductile materials (LSDMs) are desired in many emerging fields, such as biomedicine, aerospace industries, and structural engineering materials. However, producing such materials remains a significant challenge because their structures cannot confer the desired mechanical properties. In this study, we developed a silk fiber “welding” strategy to construct bioinspired LSDMs. The key to the welding process is to etch the surface of silk fiber through a partial dissolution process. The dissolved silk proteins further serve as welding materials or glues to bond the silk fibers together. Remarkably, these silk-LSDMs are not only lightweight (with the densities of around 0.28 g cm~(–3)) but also strong and tough. Their compression strength reaches up to 13.8 ± 3.4 MPa, which is higher than those of most natural and engineered porous materials. These favorable structural and mechanical characteristics, together with outstanding biocompatibility of silk proteins, render these silk-LSDMs applicable in regenerated engineered tissues and water treatment materials.
机译:在许多新兴领域,如生物医学,航空航天工业和结构工程材料等许多新兴领域需要光,强烈和延展材料(LSDMS)。然而,生产这些材料仍然是一个重大挑战,因为它们的结构不能赋予所需的机械性能。在这项研究中,我们开发了一种丝绸纤维“焊接”策略,以构建生物悬浮的LSDMS。焊接过程的关键是通过部分溶解过程蚀刻丝纤维的表面。溶解的丝蛋白进一步用作焊接材料或胶水以将丝纤维粘合在一起。值得注意的是,这些丝绸LSDM不仅重量轻(约为0.28克厘米〜(-3)的密度,而且也强壮而坚韧。它们的压缩强度高达13.8±3.4MPa,高于最自然和更具设计的多孔材料。这些有利的结构和机械特性以及丝蛋白的突出生物相容性,使这些可用于再生工程组织和水处理材料的丝绸LSDM。

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