Liu Xianchun, Xing Yan
Department of Chemistry, Northeast Normal University, 5268 Renmin Street, Changchun 130024, P. R. China.
Dalton Trans. 2023 Dec 12;52(48):18295-18301. doi: 10.1039/d3dt02985a.
A NiCoO/NiCoO/Ni foam (NCO/NCO/NF) hybrid composite with a wire-penetrated-cage hierarchical structure was synthesized by growth of bimetallic NiCo metal-organic frameworks (NiCo-MOF) on a NiCo layered double hydroxide (NiCo-LDH) nanowire-modified Ni foam (NF) surface and subsequent heat treatment in air. The NCO/NCO/NF hybrid composite shows higher specific surface area and more active sites than its individual components. The wire-penetrated-cage hierarchical structure of NCO/NCO/NF and the synergistic coupling of NCO hollow nanocages (NCO HNCs), NCO nanowires (NCO NWs) and NF provide a fast electron transfer path, improve the conductivity, accelerate the kinetic reaction rate, and enhance the structural stability. When assessed as an electrode for the oxygen evolution reaction (OER), the NCO/NCO/NF hybrid composite exhibits a low overpotential of 310 mV at 10 mA cm and current density retention of 91% after a 100 h oxidation reaction, which indicates that it has excellent catalytic activity and durability in the electrocatalytic OER.
通过在镍钴层状双氢氧化物(NiCo-LDH)纳米线修饰的泡沫镍(NF)表面生长双金属镍钴金属有机框架(NiCo-MOF)并随后在空气中进行热处理,合成了具有线穿透笼状分级结构的NiCoO/NiCoO/泡沫镍(NCO/NCO/NF)杂化复合材料。NCO/NCO/NF杂化复合材料比其单个组分具有更高的比表面积和更多的活性位点。NCO/NCO/NF的线穿透笼状分级结构以及NCO中空纳米笼(NCO HNCs)、NCO纳米线(NCO NWs)和NF的协同耦合提供了快速的电子转移路径,提高了导电性,加速了动力学反应速率,并增强了结构稳定性。当作为析氧反应(OER)的电极进行评估时,NCO/NCO/NF杂化复合材料在10 mA cm时表现出310 mV的低过电位,并且在100 h氧化反应后电流密度保持率为91%,这表明它在电催化OER中具有优异的催化活性和耐久性。