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Structural hierarchies define toughness and defect-tolerance despite simple and mechanically inferior brittle building blocks

机译:结构层次结构定义了韧性和缺陷容限,尽管简单和机械上较差的脆性构件

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摘要

Mineralized biological materials such as bone, sea sponges or diatoms provide load-bearing and armor functions and universally feature structural hierarchies from nano to macro. Here we report a systematic investigation of the effect of hierarchical structures on toughness and defect-tolerance based on a single and mechanically inferior brittle base material, silica, using a bottom-up approach rooted in atomistic modeling. Our analysis reveals drastic changes in the material crack-propagation resistance (R-curve) solely due to the introduction of hierarchical structures that also result in a vastly increased toughness and defect-tolerance, enabling stable crack propagation over an extensive range of crack sizes. Over a range of up to four hierarchy levels, we find an exponential increase in the defect-tolerance approaching hundred micrometers without introducing additional mechanisms or materials. This presents a significant departure from the defect-tolerance of the base material, silica, which is brittle and highly sensitive even to extremely small nanometer-scale defects.
机译:矿化的生物材料(例如骨头,海海绵或硅藻)提供承重和装甲功能,并且普遍具有从纳米到宏观的结构层次。在这里,我们报告了一种基于单一且机械性能较差的脆性基础材料二氧化硅的系统结构研究,该结构对韧性和缺陷耐受性的影响是基于原子建模中的自下而上方法。我们的分析表明,仅由于引入了分层结构,材料的抗裂纹扩展性(R曲线)发生了急剧变化,这也导致韧性和缺陷耐受性大大提高,从而使裂纹在广泛的裂纹尺寸范围内得以稳定传播。在多达四个层次级别的范围内,我们发现缺陷容忍度呈指数增长,接近一百微米,而没有引入其他机制或材料。这显着偏离了基础材料二氧化硅的缺陷容忍度,后者即使对于极小的纳米级缺陷也很脆且高度敏感。

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