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Quantifying the role of mineral bridges on the fracture resistance of nacre-like composites

机译:定量矿物桥对珍珠母状复合材料抗断裂性的作用

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摘要

The nacreous layer of mollusk shells holds design concepts that can effectively enhance the fracture resistance of lightweight brittle materials. Mineral bridges are known to increase the fracture resistance of nacre-inspired materials, but their role is difficult to quantify due to the lack of experimental systems where only this parameter is controllably varied. In this study, we fabricate tunable nacre-like composites that are used as a model to experimentally quantify the influence of the density of mineral bridges alone on the fracture properties of nacre-like architectures. The composites exhibit a brick-and-mortar architecture comprising highly aligned alumina platelets that are interconnected by titania mineral bridges and infiltrated by an epoxy organic phase. By combining experimental mechanical data with image analysis of such composite microstructures, an analytical model is put forward based on a simple balance of forces acting on an individual bridged platelet. Based on this model, we predict the flexural strength of the nacre-like composite to scale linearly with the density of mineral bridges, as long as the mineral interconnectivity is low enough to keep fracture in a platelet pullout mode. Increasing the mineral interconnectivity beyond this limit leads to platelet fracture and catastrophic failure of the composite. This structure-property correlation provides powerful quantitative guidelines for the design of lightweight brittle materials with enhanced fracture resistance. We illustrate this potential by fabricating nacre-like bulk composites with unparalleled flexural strength combined with noncatastrophic failure.
机译:软体动物壳的珍珠层具有可以有效增强轻质脆性材料的抗断裂性的设计理念。众所周知,矿物桥可提高珍珠质材料的抗断裂性,但由于缺乏仅可控制地改变此参数的实验系统,因此其作用难以量化。在这项研究中,我们制造了可调谐珍珠质状复合材料,将其用作模型,以实验方式量化矿物桥的密度对珍珠质状结构断裂性能的影响。该复合材料具有实体结构,包括高度对齐的氧化铝片,该片通过二氧化钛矿物桥相互连接并通过环氧有机相渗透。通过将实验力学数据与此类复合微结构的图像分析相结合,基于作用在单个桥接血小板上的力的简单平衡,提出了一种分析模型。基于此模型,我们可以预测珍珠质状复合材料的抗弯强度会随矿物桥的密度线性变化,只要矿物的互连性足够低,以使血小板保持在拔出模式即可。矿物互连性的增加超过此限制会导致血小板破裂和复合材料的灾难性破坏。这种结构属性的相关性为设计具有增强的抗断裂性的轻质脆性材料提供了强有力的定量指导。我们通过制造具有无与伦比的抗弯强度与非灾难性破坏相结合的珍珠母状块状复合材料来说明这种潜力。

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