Lian L X, Tang Y, Liu Y, Fang X M
J Nanosci Nanotechnol. 2017 Feb;17(2):1464-469. doi: 10.1166/jnn.2017.12581.
The bulk porous copper structures with three levels of pore size from macro- to micro- to nano-scale were prepared from Cu–Mn–Al alloy through a facile one-step dealloying process. The excellent performances, such as hierarchical porosity, ultralow density (theoretical density at 0.53 g/cm3), and stable mechanical properties, were obtained in these copper structures which could be widely applied in many potential industrial applications. In addition, the process and mechanism of the pore formation was well investigated by SEM and EDX in this paper. The experimental results showed that the hierarchical multi-scale porosities in bulk copper structures were successfully fabricated by the one-step dealloying method. The macro-pores (up to 70 μm in major axis) and the micro-pores (about 2˜5 μm in diameter) in this sample were obtained from the removed high-purity Al phase of the precursor alloy, while the nano-pores (about 70˜100 nm in diameter) were generated from the dealloyed intermetallic compounds of Al2Cu and Al11Cu5Mn3, respectively.
通过简便的一步脱合金工艺,由铜 - 锰 - 铝合金制备出具有从宏观到微观再到纳米尺度三级孔径的块状多孔铜结构。这些铜结构具有优异的性能,如分级孔隙率、超低密度(理论密度为0.53 g/cm³)和稳定的力学性能,可广泛应用于许多潜在的工业应用中。此外,本文通过扫描电子显微镜(SEM)和能谱仪(EDX)对孔隙形成的过程和机理进行了深入研究。实验结果表明,通过一步脱合金法成功制备出了块状铜结构中的分级多尺度孔隙。该样品中的大孔(长轴可达70μm)和微孔(直径约2 - 5μm)分别来自前驱体合金中去除的高纯铝相,而纳米孔(直径约70 - 100nm)则分别由Al₂Cu和Al₁₁Cu₅Mn₃的脱合金金属间化合物产生。