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Micro-ano-voids guided two-stage film cracking on bioinspired assemblies for high-performance electronics

机译:微型/纳米空隙引导的生物启发组件上的两阶段薄膜开裂用于高性能电子产品

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摘要

Current metal film-based electronics, while sensitive to external stretching, typically fail via uncontrolled cracking under a relatively small strain (~30%), which restricts their practical applications. To address this, here we report a design approach inspired by the stereocilia bundles of a cochlea that uses a hierarchical assembly of interfacial nanowires to retard penetrating cracking. This structured surface outperforms its flat counterparts in stretchability (130% versus 30% tolerable strain) and maintains high sensitivity (minimum detection of 0.005% strain) in response to external stimuli such as sounds and mechanical forces. The enlarged stretchability is attributed to the two-stage cracking process induced by the synergy of micro-voids and nano-voids. In-situ observation confirms that at low strains micro-voids between nanowire clusters guide the process of crack growth, whereas at large strains new cracks are randomly initiated from nano-voids among individual nanowires.
机译:当前的基于金属膜的电子设备虽然对外部拉伸敏感,但通常会在相对较小的应变(约30%)下由于无法控制的开裂而失效,这限制了它们的实际应用。为了解决这个问题,我们在此报告一种设计方法,该方法受耳蜗的立体纤毛束启发,该束使用界面纳米线的分层组装来阻止穿透裂纹。这种结构化的表面在拉伸性方面优于其平坦的表面(130%对30%的可承受应变),并在响应外部刺激(如声音和机械力)时保持高灵敏度(最小检测到0.005%应变)。扩大的可拉伸性归因于微孔和纳米孔的协同作用引起的两阶段破裂过程。原位观察证实,在低应变下,纳米线簇之间的微孔可指导裂纹的生长过程,而在较大应变下,新的裂纹是由各个纳米线之间的纳米孔随机引发的。

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