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Atomic-scale viscoplasticity mechanisms revealed in high ductility metallic glass films

机译:在高延展性金属玻璃膜中揭示出原子尺度的粘塑性机制

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摘要

The fundamental plasticity mechanisms in thin freestanding Zr65Ni35 metallic glass films are investigated in order to unravel the origin of an outstanding strength/ductility balance. The deformation process is homogenous until fracture with no evidence of catastrophic shear banding. The creep/relaxation behaviour of the films was characterized by on-chip tensile testing, revealing an activation volume in the range 100–200 Å3. Advanced high-resolution transmission electron microscopy imaging and spectroscopy exhibit a very fine glassy nanostructure with well-defined dense Ni-rich clusters embedded in Zr-rich clusters of lower atomic density and a ~2–3 nm characteristic length scale. Nanobeam electron diffraction analysis reveals that the accumulation of plastic deformation at room-temperature correlates with monotonously increasing disruption of the local atomic order. These results provide experimental evidences of the dynamics of shear transformation zones activation in metallic glasses. The impact of the nanoscale structural heterogeneities on the mechanical properties including the rate dependent behaviour is discussed, shedding new light on the governing plasticity mechanisms in metallic glasses with initially heterogeneous atomic arrangement.
机译:研究了独立的Zr65Ni35金属薄玻璃薄膜的基本可塑性机制,以揭示出色的强度/延展性平衡的根源。变形过程是均匀的,直到断裂,没有灾难性剪切带的迹象。薄膜的蠕变/松弛行为通过片上拉伸测试进行了表征,揭示了活化体积为100-200Å 3 。先进的高分辨率透射电子显微镜成像和光谱学表现出非常精细的玻璃状纳米结构,其内含定义明确的致密的富镍团簇,这些团簇嵌入较低原子密度和约2–3 nm特征长度尺度的富Zr团簇中。纳米束电子衍射分析表明,室温下塑性变形的累积与局部原子序的单调增加相关。这些结果提供了金属玻璃中剪切转变区活化动力学的实验证据。讨论了纳米级结构异质性对包括速率依赖性行为在内的机械性能的影响,为最初具有异质原子排列的金属玻璃的可塑性机制提供了新的思路。

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