State Key Laboratory of Chemical Resource Engineering, Beijing University of Chemical Technology, Beijing 100029, P. R. China.
ACS Appl Mater Interfaces. 2023 Mar 8;15(9):12078-12087. doi: 10.1021/acsami.3c00385. Epub 2023 Feb 26.
The NiCo alloy is one of the most promising alternatives to the noble-metal electrocatalysts for the hydrogen evolution reaction (HER); however, its performance is largely restricted by insufficient active sites and low surface area. Here, we fabricated a hierarchical hollow carbon cage supported NiCo alloy (denoted as HC NiCo/C) and a bulk NiCo alloy (denoted as NiCo) by reduction of a partially ZIF-67 etched ZIF-67@NiCo-LDH (LDH = layered double hydroxide) precursor and a fully ZIF-67 etched NiCo-LDH precursor, respectively. The as-prepared HC NiCo/C, in which the NiCo alloy nanocrystals with an average 6 nm size were encapsulated in graphitic carbon layers, provided a vastly increased electrochemically active surface area (. 13 times than the NiCo) and abundant catalytic active sites, which resulted in a higher HER performance with an overpotential of 99 mV than the 198 mV for NiCo at 10 mA cm. Detailed experimental results suggested that only the HC NiCo/C possessed the active alloy surface composed of unsaturated Ni and Co atoms, and both the metal-support interaction and alloying effect influenced the electronic structure of Co and Ni in HC NiCo/C, whereas the NiCo exhibited pure Ni surface. Theoretical calculations further revealed the NiCo alloy surface in HC NiCo/C possessed the appropriate adsorption energy of the intermediate state (adsorbed H*). This work provided new insight into the construction of the stable small-sized bimetallic alloy nanocatalysts by regulating the reduction precursors.
镍钴合金是替代贵金属电催化剂用于析氢反应(HER)最有前景的材料之一;然而,其性能在很大程度上受到活性位点不足和比表面积低的限制。在这里,我们通过还原部分刻蚀的 ZIF-67@NiCo-LDH(LDH=层状双氢氧化物)前体和完全刻蚀的 NiCo-LDH 前体制备了分级空心碳笼负载的镍钴合金(记为 HC NiCo/C)和块状 NiCo 合金。所制备的 HC NiCo/C 中,平均尺寸为 6nm 的 NiCo 合金纳米晶被包裹在石墨碳层中,提供了更大的电化学活性表面积(比 NiCo 高 13 倍)和丰富的催化活性位点,从而在 10mA cm 时具有更低的过电势(99mV 比 NiCo 的 198mV 低)的 HER 性能。详细的实验结果表明,只有 HC NiCo/C 具有由不饱和 Ni 和 Co 原子组成的活性合金表面,金属-载体相互作用和合金化效应对 HC NiCo/C 中 Co 和 Ni 的电子结构都有影响,而 NiCo 则表现出纯 Ni 表面。理论计算进一步表明,HC NiCo/C 中的 NiCo 合金表面具有适当的中间体(吸附的 H*)吸附能。这项工作为通过调节还原前体制备稳定的小尺寸双金属合金纳米催化剂提供了新的思路。