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鲍鱼壳中平板起源增韧及其在合成复合材料中的转化。

Tablet-level origin of toughening in abalone shells and translation to synthetic composite materials.

机构信息

Northwestern University, Mechanical Engineering, 2145 Sheridan Road, Evanston, Illinois 60208-3111, USA.

出版信息

Nat Commun. 2011 Feb 1;2:173. doi: 10.1038/ncomms1172.

Abstract

Nacre, the iridescent material in seashells, is one of many natural materials employing hierarchical structures to achieve high strength and toughness from relatively weak constituents. Incorporating these structures into composites is appealing as conventional engineering materials often sacrifice strength to improve toughness. Researchers hypothesize that nacre's toughness originates within its brick-and-mortar-like microstructure. Under loading, bricks slide relative to each other, propagating inelastic deformation over millimeter length scales. This leads to orders-of-magnitude increase in toughness. Here, we use in situ atomic force microscopy fracture experiments and digital image correlation to quantitatively prove that brick morphology (waviness) leads to transverse dilation and subsequent interfacial hardening during sliding, a previously hypothesized dominant toughening mechanism in nacre. By replicating this mechanism in a scaled-up model synthetic material, we find that it indeed leads to major improvements in energy dissipation. Ultimately, lessons from this investigation may be key to realizing the immense potential of widely pursued nanocomposites.

摘要

珍珠母,即贝壳中的彩虹色物质,是众多利用层次结构来实现高强度和韧性的天然材料之一,这些结构可以应用于复合材料中,因为传统的工程材料通常为了提高韧性而牺牲强度。研究人员假设珍珠母的韧性源自其类似于砖-泥灰的微观结构。在加载下,砖彼此相对滑动,在毫米长度尺度上传播非弹性变形。这导致韧性呈数量级增加。在这里,我们使用原位原子力显微镜断裂实验和数字图像相关来定量证明,在滑动过程中,砖的形态(波纹度)导致横向膨胀和随后的界面硬化,这是珍珠母中以前假设的主要增韧机制。通过在规模化模型合成材料中复制这种机制,我们发现它确实可以大大提高能量耗散。最终,从这项研究中获得的经验教训可能是实现广泛研究的纳米复合材料巨大潜力的关键。

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