Sun Ming, Lu Zhiyi, Luo Liang, Chang Zheng, Sun Xiaoming
State Key Laboratory of Chemical Resource Engineering, Beijing University of Chemical Technology, Beijing 100029, China.
Nanoscale. 2016 Jan 21;8(3):1479-84. doi: 10.1039/c5nr07072d.
Structural design and catalyst screening are two most important factors for achieving exceptional electrocatalytic performance. Herein we demonstrate that constructing a three-dimensional (3D) porous Ni-Cu alloy film is greatly beneficial for improving the hydrazine oxidation reaction (HzOR) performance. A facile electrodeposition process is employed to synthesize a Ni-Cu alloy film with a 3D hierarchical porous structure. As an integrated electrode for HzOR, the Ni-Cu alloy film exhibits superior catalytic activity and stability to the Ni or Cu counterparts. The synthesis parameters are also systematically tuned for optimizing the HzOR performance. The excellent HzOR performance of the Ni-Cu alloy film is attributed to its high intrinsic activity, large electrochemical specific surface area, and 3D porous architecture which offers a "superaerophobic" surface to effectively remove the gas product in a small volume. It is believed that the Ni-Cu alloy film electrode has potential application in direct hydrazine fuel cells as well as other catalytic fields.
结构设计和催化剂筛选是实现卓越电催化性能的两个最重要因素。在此,我们证明构建三维(3D)多孔镍 - 铜合金薄膜对提高肼氧化反应(HzOR)性能非常有益。采用简便的电沉积工艺合成具有3D分级多孔结构的镍 - 铜合金薄膜。作为用于HzOR的集成电极,镍 - 铜合金薄膜对镍或铜对应物表现出优异的催化活性和稳定性。还系统地调整了合成参数以优化HzOR性能。镍 - 铜合金薄膜优异的HzOR性能归因于其高本征活性、大的电化学比表面积以及3D多孔结构,该结构提供了一个“超疏气”表面,可在小体积内有效去除气体产物。据信,镍 - 铜合金薄膜电极在直接肼燃料电池以及其他催化领域具有潜在应用。