Guo Yanling, Pan Zhongqin, Ye Changqing, Huo Xiao-Lei, Bao Ning, Zhou Qingwen
Institute of Environmental Health & Green Chemistry, School of Public Health, Nantong University, Nantong226019, Jiangsu, China.
Inorg Chem. 2022 Dec 12;61(49):20073-20079. doi: 10.1021/acs.inorgchem.2c03482. Epub 2022 Nov 29.
Designing earth-abundant electrocatalysts that are highly active, low-cost, and stable for the oxygen evolution reaction (OER) is crucial for electrochemical water splitting. However, in conventional electrode fabrication strategies, NiFe layered double hydroxide (NiFe LDH) catalysts are usually coated onto substrates as external components, which suffers from poor conductivity, easily detaches from the substrate, and hinders their long-term utilization. Herein, the surface-reconstruction strategy is used to synthesize in situ autologous NiFe LDH to increase the surficial active sites numbers. The FeNi foam (FNF) serves as both the metal source and substrate, and the obtained NiFe LDH nanosheets (NSs) are firmly anchored in the monolithic FNF. What needs to be emphasized is that the strategy does not involve any high-temperature or high-pressure processes, apart from a cost-effective etching and a specified drying treatment. The nanostructure of NiFe LDH and the synergistic effect between Fe and Ni simultaneously lead to an enhanced catalytic effect for the OER. Remarkably, the -FNF46 requires only an ultralow overpotential of 283 mV to achieve a current density of 100 mA cm for the OER in 1 M KOH electrolyte, and exhibits excellent stability. Thus, the obtained electrode holds promise for electrocatalytic applications. Finally, the formation mechanism of NiFe LDH NSs due to surface reconstruction is investigated and discussed in detail.
设计出对析氧反应(OER)具有高活性、低成本且稳定的地球丰富型电催化剂对于电化学水分解至关重要。然而,在传统的电极制备策略中,镍铁层状双氢氧化物(NiFe LDH)催化剂通常作为外部组件涂覆在基底上,这存在导电性差、容易从基底上脱落以及阻碍其长期使用等问题。在此,采用表面重构策略原位合成自体NiFe LDH以增加表面活性位点数量。泡沫铁镍(FNF)既作为金属源又作为基底,所获得的NiFe LDH纳米片(NSs)牢固地锚定在整体式FNF中。需要强调的是,该策略除了进行具有成本效益的蚀刻和特定的干燥处理外,不涉及任何高温或高压过程。NiFe LDH的纳米结构以及Fe和Ni之间的协同效应同时导致对OER的催化效果增强。值得注意的是,-FNF46在1 M KOH电解液中对于OER仅需要283 mV的超低过电位就能达到100 mA cm的电流密度,并且表现出优异的稳定性。因此,所获得的电极在电催化应用方面具有前景。最后,详细研究并讨论了由于表面重构导致NiFe LDH NSs的形成机理。