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首页> 外文期刊>Science Advances >Toughening stretchable fibers via serial fracturing of a metallic core
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Toughening stretchable fibers via serial fracturing of a metallic core

机译:通过金属芯的连续压裂来增韧可拉伸纤维

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Tough, biological materials (e.g., collagen or titin) protect tissues from irreversible damage caused by external loads. Mimicking these protective properties is important in packaging and in emerging applications such as durable electronic skins and soft robotics. This paper reports the formation of tough, metamaterial-like core-shell fibers that maintain stress at the fracture strength of a metal throughout the strain of an elastomer. The shell experiences localized strain enhancements that cause the higher modulus core to fracture repeatedly, increasing the energy dissipated during extension. Normally, fractures are catastrophic. However, in this architecture, the fractures are localized to the core. In addition to dissipating energy, the metallic core provides electrical conductivity and enables repair of the fractured core for repeated use. The fibers are 2.5 times tougher than titin and hold more than 15,000 times their own weight for a period 100 times longer than a hollow elastomeric fiber.
机译:坚韧的生物材料(例如胶原蛋白或钛蛋白)可以保护组织免受外部负荷造成的不可逆转的伤害。在包装和新兴应用(例如耐用的电子皮肤和软机器人)中,模仿这些保护特性非常重要。该论文报道了坚韧的超材料状核壳纤维的形成,这种核壳纤维在整个弹性体应变过程中均能保持金属断裂强度的应力。壳经历局部应变增强,导致较高模量的核心反复断裂,从而增加了拉伸过程中耗散的能量。通常,骨折是灾难性的。但是,在这种体系结构中,裂缝位于芯部。除了耗散能量之外,金属芯还提供了导电性,并能够修复断裂的芯,以便重复使用。纤维的强度是钛的2.5倍,并且其固着力是中空弹性体纤维的1.5倍,是其自身重量的15,000倍以上。

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