4.7 Article

Ce-Substituted Spinel CuCo2O4 Quantum Dots with High Oxygen Vacancies and Greatly Improved Electrocatalytic Activity for Oxygen Evolution Reaction

期刊

INORGANIC CHEMISTRY
卷 60, 期 24, 页码 19136-19144

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.inorgchem.1c02931

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资金

  1. National Natural Science Foundation of China [52162034, 21363021, 51302222, 21965032]
  2. Natural Science Foundation of Gansu Province [1308RJYA017]
  3. Innovation Foundation for College and University of Gansu Province [2020B-120]

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In this study, the OER performance of spinel CuCo2O4 was greatly enhanced through cation substitution and size reduction, with the synthesis of CuCe delta Co2-delta Ox nanoparticles in the quantum dot scale (2-8 nm). These nanoparticles displayed high OER activity, with a low overpotential and outperforming commercial RuO2 and other high-performance catalysts. The Ce substitution was found to produce rich oxygen vacancies, tune intermediate absorption, and greatly enhance the OER activity of the catalysts.
Exploring effective electrocatalysts for oxygen evolution reaction (OER) is a crucial requirement of many energy storage and transformation systems, involving fuel cells, water electrolysis, and metal-air batteries. Transition-metal oxides (TMOs) have attracted much attention to OER catalysts because of their earth abundance, tunable electronic properties, and so forth. Defect engineering is a general and the most important strategy to tune the electronic structure and control size, and thus improve their intrinsic activities. Herein, OER performance on spinel CuCo2O4 was greatly enhanced through cation substitution and size reduction. Ce-substituted spinel CuCe delta Co2-delta Ox (delta = 0.45, 0.5 and 0.55) nanoparticles in the quantum dot scale (2-8 nm) were synthesized using a simple and facile phase-transfer coprecipitation strategy. The as-prepared samples were highly dispersed and have displayed a low overpotential of 294 mV at 10 mA.cm(-2) and a Tafel slope of 57.5 mV.dec(-1), which outperform commercial RuO2 and the most high-performance analogous catalysts reported. The experimental and calculated results all confirm that Ce substitution with an appropriate content can produce rich oxygen vacancies, tune intermediate absorption, consequently lower the energy barrier of the determining step, and greatly enhance the OER activity of the catalysts. This work not only provides advanced OER catalysts but also opens a general avenue to understand the structure-activity relationship of pristine TMO catalysts deeply in the quantum dot scale and the rational design of more efficient OER catalysts.

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