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Mechanical properties of nanoporous gold subjected to tensile stresses in real-time, sub-microscopic scale

机译:实时,亚微观尺度抗拉伸应力的纳米孔金的力学性能

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摘要

Ductile metals infiltrated with interconnected nanopores through selective dealloying gain useful properties but become macroscopically brittle due to flow localization. The mechanical behavior of nanoporous metals is dependent on a complex relationship between the deformation of the nanoporous foam structure and the deformation of the individual ligaments. Recent simulations and in situ experiments have revealed many insights into the deformation behavior of nanoporous metals, but it remains unclear how to engineer the structure to reduce flow localization. We perform transmission electron microscopy in situ tensile experiments on freestanding nanoporous gold films and observe the morphology evolution of both the interconnected structure and individual ligaments during deformation. Most ligaments fractured through plastic instability after large plastic elongation. We also observed several unexpected results such as instances of strain hardening and nanoscale brittle fracture in individual ligaments. Our observations suggest that highly curved ligaments and a wider distribution of ligament diameters could each contribute to ductility and fracture toughness.
机译:通过选择性妥协的纳米孔渗透渗透型纳米孔,获得有用的性质,但由于流量定位而导致宏观脆弱。纳米多孔金属的力学行为取决于纳米多孔泡沫结构的变形与个体韧带的变形之间的复杂关系。最近的模拟和原位实验揭示了纳米多孔金属的变形行为的许多见解,但仍然尚不清楚如何工程如何降低流量定位。我们对独立纳米多孔金薄膜进行透射电子显微镜,并观察变形期间互连结构和单个韧带的形态演化。大多数韧带通过大型塑料伸长后通过塑料不稳定进行破裂。我们还观察到了几种意外结果,例如菌株硬化和纳米级脆性骨折在单个韧带中的情况。我们的观察结果表明,高度弯曲的韧带和更宽的韧带直径分布各自有助于延展性和断裂韧性。

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