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An in-situ small angle x ray scattering analysis of nanopore formation during thermally induced chemical dealloying of brass thin foils

机译:黄铜薄箔热诱导化学脱合金过程中纳米孔形成的原位小角X射线散射分析

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摘要

The development of non-noble nano-porous metal materials is hindered by surface oxidation reactions and from the difficulty to generate long range order pore arrays. Dealloying is a promising route to generate such materials by selective chemical etching of metal alloy materials. This process can generate nano-metal materials with superior plasmonic, catalytic and adsorptive surface properties. Here, the impact of properties of the etching solution on the dealloying process to generate nano-pores across thin film alloys was investigated by in-situ SAXS dealloying experiments. Single phase CuZn alloys were used as model materials to evaluate the influence of the solution temperature on the pore formation kinetics. This novel analysis allowed to visualize the change in surface properties of the materials over time, including their surface area as well as their pore and ligament sizes. The dealloying kinetics at the very early stage of the process were found to be critical to both stable pore formation and stabilization. SAXS in-situ data were correlated to the morphological properties of the materials obtained from ex-situ samples by Rutherford back scattering and scanning electron microscopy.
机译:非贵金属纳米多孔金属材料的发展受到表面氧化反应的阻碍,并且由于难以产生长程有序孔阵列而受到阻碍。脱合金是一种通过对金属合金材料进行选择性化学蚀刻来生产此类材料的有前途的途径。该过程可以产生具有优异的等离子体,催化和吸附表面性能的纳米金属材料。在这里,通过原位SAXS脱合金实验研究了蚀刻液的性能对脱合金工艺产生跨薄膜合金的纳米孔的影响。单相CuZn合金用作模型材料,以评估固溶温度对孔形成动力学的影响。这种新颖的分析方法可以直观地观察材料随时间变化的表面特性,包括其表面积以及孔和韧带尺寸。发现在该过程的最早期阶段的脱合金动力学对于稳定的孔形成和稳定都至关重要。 SAXS原位数据与通过卢瑟福反向散射和扫描电子显微镜从异位样品获得的材料的形态特性相关。

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