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Universality of periodicity as revealed from interlayer-mediated cracks

机译:从层间介导的裂纹中揭示出周期性的普遍性

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摘要

A crack and its propagation is a challenging multiscale materials phenomenon of broad interest, from nanoscience to exogeology. Particularly in fracture mechanics, periodicities are of high scientific interest. However, a full understanding of this phenomenon across various physical scales is lacking. Here, we demonstrate periodic interlayer-mediated thin film crack propagation and discuss the governing conditions resulting in their periodicity as being universal. We show strong confinement of thin film cracks and arbitrary steering of their propagation by inserting a predefined thin interlayer, composed of either a polymer, metal, or even atomically thin graphene, between the substrate and the brittle thin film. The thin interlayer-mediated controllability arises from local modification of the effective mechanical properties of the crack medium. Numerical calculations incorporating basic fracture mechanics principles well model our experimental results. We believe that previous studies of periodic cracks in SiN films, self-de-bonding sol-gel films, and even drying colloidal films, along with this study, share the same physical origins but with differing physical boundary conditions. This finding provides a simple analogy for various periodic crack systems that exist in nature, not only for thin film cracks but also for cracks ranging in scale.
机译:从纳米科学到系外地质学,裂缝及其扩展是一种引起广泛关注的具有挑战性的多尺度材料现象。特别是在断裂力学中,周期性具有很高的科学价值。但是,缺乏对各种物理尺度上这种现象的全面理解。在这里,我们演示了周期性的层间介导的薄膜裂纹扩展,并讨论了导致其周期性为普遍性的控制条件。我们通过在基材和脆性薄膜之间插入由聚合物,金属或什至原子上薄的石墨烯组成的预定义的薄中间层,显示出对薄膜裂纹的严格限制和对它们的传播的任意控制。薄的中间层介导的可控制性源自裂纹介质有效机械性能的局部改变。结合基本断裂力学原理的数值计算很好地模拟了我们的实验结果。我们相信,先前对SiN薄膜,自解离溶胶-凝胶薄膜甚至干燥的胶体薄膜的周期性裂纹的研究与该研究一起,具有相同的物理起源,但具有不同的物理边界条件。这一发现为自然界中存在的各种周期性裂缝系统提供了简单的类比,不仅适用于薄膜裂缝,而且适用于规模不等的裂缝。

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