Henan Key Laboratory of Green Chemistry, Collaborative Innovation Center of Henan Province for Green Manufacturing of Fine Chemicals, Key Laboratory of Green Chemical Media and Reactions, Ministry of Education, School of Chemistry and Chemical Engineering, Henan Normal University, Xinxiang, Henan 453007, China.
Beijing National Laboratory for Molecular Sciences, Key Laboratory of Colloid and Interface and Thermodynamics, CAS Research/Education Center for Excellence in Molecular Sciences Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, China.
J Colloid Interface Sci. 2022 Mar;609:149-157. doi: 10.1016/j.jcis.2021.11.173. Epub 2021 Dec 2.
Developing high-performance catalysts for water splitting via renewable electricity is of great significance for the clean production of hydrogen. This work reports rational design and controllable fabrication of metal oxide hybrid catalyst CoNiFeO·2CuO with unique biphasic microstructures for electrochemical water splitting. Benefited from the presence of CuO nanoparticles as the second phase, more defects and active sites were formed around the interfaces of CoNiFeO and CuO, which led to excellent performances for electrocatalytic water splitting. In particular, the catalyst exhibited outstanding activity for hydrogen evolution reaction with a small overpotential of 30 mV to reach a current density of 10 mA cm and showed a higher turnover frequency (0.3 s) than commercial catalyst Pt/C (0.1 s) under an overpotential of 50 mV. Moreover, it also displayed good activity for oxygen evolution reaction with an overpotential of 264 mV at 10 mA cm. Using CoNiFeO·2CuO as the catalyst for electrode pair to construct a cell, a very low cell voltage of 1.53 V is enough to achieve overall water splitting at 10 mA cm in 1 M KOH electrolyte, and the cell could maintain the stable performance at 10 mA cm within 100 h. The as-prepared metal oxide hybrids with biphasic microstructures may have promising application potentials in water splitting.
通过可再生电力开发用于水分解的高性能催化剂对于氢气的清洁生产具有重要意义。本工作报道了具有独特双相微结构的金属氧化物杂化催化剂 CoNiFeO·2CuO 的合理设计和可控制备,用于电化学水分解。得益于 CuO 纳米粒子作为第二相的存在,在 CoNiFeO 和 CuO 的界面周围形成了更多的缺陷和活性位点,从而导致电催化水分解的优异性能。特别是,该催化剂在析氢反应中表现出出色的活性,其过电位为 30 mV 即可达到 10 mA cm 的电流密度,在 50 mV 的过电位下,其周转率(0.3 s)高于商业催化剂 Pt/C(0.1 s)。此外,它在 10 mA cm 下析氧反应的过电位也为 264 mV。使用 CoNiFeO·2CuO 作为催化剂对电极对构建电池,在 1 M KOH 电解质中,只需 1.53 V 的非常低的电池电压即可在 10 mA cm 下实现整体水分解,并且该电池可以在 10 mA cm 下稳定运行 100 h。具有双相微结构的这种金属氧化物杂化物可能在水分解中有很有前景的应用潜力。