纳米初始浓度波介导的多晶现象揭示了纳米结构金属玻璃中隐藏的超高模量非晶中间态

Q. Luo, W. Cui, Huaping Zhang, Liangliang Li, Liliang Shao, Mingjuan Cai, Zhengguo Zhang, L. Xue, Jun Shen, Yu Gong, Xiaodong Li, Maozi Li, B. Shen
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引用次数: 3

摘要

作为材料科学中最引人入胜的问题之一,理解压力/温度诱导的玻璃结构转变还远远没有得到很好的理解。在这里,我们报道了cu基金属玻璃(MG)中具有明显纳米级结构非均质性的新型多晶转变,这与适当的Y添加有关。低密度MG随着压力的增加而持续压缩,在~ 8.1 GPa后出现一个压缩平台,并演变为超高体积模量(~ 467 GPa)的中间状态。然后,它转变为高密度MG,在~ 14.1 GPa以上结构异质性显著降低。三维原子探针层析成像显示Cu/Zr元素的浓度波平均波长为~ 5 ~ 6 nm,在纳米尺度上促进了富Cu和富Zr双玻璃畴相互连接的环状网络的形成。我们的实验和模拟结果表明,阶梯状多晶化可能是由于原子尺度上Zr - Zr键长度的异常压缩以及施加压力和初始浓度波(Cu和Zr)在几个纳米尺度上的相互作用造成的。本研究为研究玻璃的多晶现象提供了新的思路,并为高压纳米结构工程发展高性能非晶材料做出了贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Polyamorphism mediated by nanoscale incipient concentration wave uncovering hidden amorphous intermediate state with ultrahigh modulus in nanostructured metallic glass
Comprehending the pressure-/temperature-induced structural transition in glasses, as one of the most fascinating issues in material science, is far from being well understood. Here, we report novel polyamorphic transitions in a Cu-based metallic glass (MG) with apparent nanoscale structural heterogeneity relating to proper Y addition. The low-density MG compresses continuously with increasing pressure, and then a compression plateau appears after ∼8.1 GPa, evolving into an intermediate state with an ultrahigh bulk modulus of ∼467 GPa. It then transforms to a high-density MG with significantly decreased structural heterogeneity above ∼14.1 GPa. Three-dimensional atom probe tomography reveals concentration waves of Cu/Zr elements with an average wavelength of ∼5–6 nm, which promote the formation of interconnected ringlike networks composed of Cu-rich and Zr-rich dual-glass domains at nanometer scale. Our experimental and simulation results indicate that steplike polyamorphism may stem from synergic effects of the abnormal compression of the Zr–Zr bond length at the atomic scale and the interplay between the applied pressure and incipient concentration waves (Cu and Zr) at several nanometer scales. The present work provides new insights into polyamorphism in glasses and contributes to the development of high-performance amorphous materials by high-pressure nanostructure engineering.
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CiteScore
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