Department of Chemistry and Life Science, United States Military Academy, West Point, NY 10996, USA.
Armament Research, Development and Engineering Center, U.S. Army RDECOM-ARDEC, Picatinny Arsenal, NJ 07806, USA.
Molecules. 2018 Jul 12;23(7):1701. doi: 10.3390/molecules23071701.
Multi-metallic and alloy nanomaterials enable a broad range of catalytic applications with high surface area and tuning reaction specificity through the variation of metal composition. The ability to synthesize these materials as three-dimensional nanostructures enables control of surface area, pore size and mass transfer properties, electronic conductivity, and ultimately device integration. Au-Cu nanomaterials offer tunable optical and catalytic properties at reduced material cost. The synthesis methods for Au-Cu nanostructures, especially three-dimensional materials, has been limited. Here, we present Au-Cu nanofoams and Au-Cu-Pd macrobeams synthesized from salt precursors. Salt precursors formed from the precipitation of square planar ions resulted in short- and long-range ordered crystals that, when reduced in solution, form nanofoams or macrobeams that can be dried or pressed into freestanding monoliths or films. Metal composition was determined with X-ray diffraction and energy dispersive X-ray spectroscopy. Nitrogen gas adsorption indicated an Au-Cu nanofoam specific surface area of 19.4 m²/g. Specific capacitance determined with electrochemical impedance spectroscopy was 46.0 F/g and 52.5 F/g for Au-Cu nanofoams and Au-Cu-Pd macrobeams, respectively. The use of salt precursors is envisioned as a synthesis route to numerous metal and multi-metallic nanostructures for catalytic, energy storage, and sensing applications.
多金属和合金纳米材料通过改变金属成分,实现了具有高表面积和可调反应特异性的广泛催化应用。将这些材料合成为三维纳米结构的能力能够控制表面积、孔径和传质特性、电子导电性,最终实现器件集成。Au-Cu 纳米材料具有降低材料成本的可调谐光学和催化性能。Au-Cu 纳米结构的合成方法,特别是三维材料,受到限制。在这里,我们展示了由盐前体制备的 Au-Cu 纳米泡沫和 Au-Cu-Pd 宏观束。由四方平面离子沉淀形成的盐前体导致短程和长程有序晶体,当在溶液中还原时,形成纳米泡沫或宏观束,可以干燥或压制成独立的整体或薄膜。通过 X 射线衍射和能量色散 X 射线光谱确定了金属组成。氮气吸附表明 Au-Cu 纳米泡沫的比表面积为 19.4 m²/g。通过电化学阻抗谱确定的比电容分别为 46.0 F/g 和 52.5 F/g,适用于 Au-Cu 纳米泡沫和 Au-Cu-Pd 宏观束。预计使用盐前体作为合成路线,用于制备许多金属和多金属纳米结构,用于催化、储能和传感应用。