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Tough and Strong: Cross-Lamella Design Imparts Multifunctionality to Biomimetic Nacre

机译:强硬:横薄薄片设计将多功能性赋予生物摩擦珍珠蛋白

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摘要

The creation of structural composites with combined strength, toughness, low density, and biocompatibility remains a long-standing challenge. On the other hand, bivalve marine shells—Clinocardium spp. —exhibit strength, stiffness, and toughness that surpass even that of the nacre that is the most widely mimicked model for structural composites. The superior mechanical properties of Clinocardium spp. shells originate from their cross-lamella design, comprising CaCO_(3) mineral platelets arranged in an “interlocked” herringbone fashion. Reproduction of such hierarchical designs could offer multifunctionality, potentially combining strength and toughness at low densities, and the capability for seamless integration with biological systems. Here, we demonstrate manufacturing of the cross-lamella design by biomineralizing aragonite films with sawtooth patterns and assembling them in a chitosan/fibroin matrix to generate a composite with interlocked mineral layers. The resultant composite, with a similar constitution to that of the biological counterpart, nearly doubles the strength of previous nacre-mimetic composites while improving the tensile toughness and simultaneously exhibiting stiffness and biocompatibility.
机译:采用组合强度,韧性,低密度和生物相容性的结构复合材料仍然是长期挑战。另一方面,双向海洋壳 - 冠心病 SPP。 - 避免强度,僵硬和韧性,甚至均匀的纳卡人甚至是结构复合材料最广泛模仿的模型。 冠心病的优异机械性能 SPP。壳体源自其交叉薄片设计,包括Caco_(3)矿物血小板,以“互锁的”人字形时尚。这种层级设计的再现可以提供低密度的多功能,可能结合强度和韧性,以及与生物系统无缝集成的能力。在这里,我们通过用锯齿形状的锯齿形薄膜制造横薄薄片设计,并在壳聚糖/丝蛋白基质中组装它们以产生具有互锁矿物层的复合材料。所得复合材料,具有与生物对应物相似的结构,几乎加倍先前的珍珠液剂复合材料的强度,同时改善拉伸韧性并同时表现出刚度和生物相容性。

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