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Temperature-Invariant Superelastic and Fatigue Resistant Carbon Nanofiber Aerogels

机译:温度不变的超弹性和抗疲劳碳纳米纤维气凝胶

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摘要

Superelastic and fatigue-resistant materials that can work over a wide temperature range are highly desired for diverse applications. A morphology-retained and scalable carbonization method is reported to thermally convert a structural biological material (i.e., bacterial cellulose) into graphitic carbon nanofiber aerogel by engineering the pyrolysis chemistry. The prepared carbon aerogel perfectly inherits the hierarchical structures of bacterial cellulose from macroscopic to microscopic scales, resulting in remarkable thermomechanical properties. In particular, it maintains superelasticity without plastic deformation even after 2 x 10(6) compressive cycles and exhibits exceptional temperature-invariant superelasticity and fatigue resistance over a wide temperature range at least from -100 to 500 degrees C. This aerogel shows unique advantages over polymeric foams, metallic foams, and ceramic foams in terms of thermomechanical stability and fatigue resistance, with the realization of scalable synthesis and the economic advantage of biological materials.
机译:可以在很宽的温度范围内工作的超弹性和抗疲劳材料,对于各种应用都非常需要。据报道,形态保留和可扩展的碳化方法通过工程化热解化学将结构生物材料(即细菌纤维素)热转化为石墨碳纳米纤维气凝胶。制备的碳气凝胶完美地继承了细菌纤维素从宏观到微观的层次结构,从而产生了显着的热机械性能。特别是,即使在2 x 10(6)压缩循环后,它仍能保持超弹性而不会发生塑性变形,并且在至少-100到500摄氏度的宽温度范围内,都具有出色的温度不变的超弹性和抗疲劳性。聚合物泡沫,金属泡沫和陶瓷泡沫的热机械稳定性和抗疲劳性,并实现了可扩展的合成和生物材料的经济优势。

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