4.7 Article

Combinatorial Synthesis and Screening of a Ternary NiFeCoOx Library for the Oxygen Evolution Reaction

期刊

ACS APPLIED ENERGY MATERIALS
卷 5, 期 4, 页码 4017-4024

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsaem.1c03845

关键词

combinatorial electrochemistry; spray pyrolysis; electrocatalysis; oxygen evolution; green energy

资金

  1. Planning & Budgeting Committee of the Council of High Education
  2. Prime Minister Office of Israel

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This study systematically investigates the performance of a ternary Ni-Fe-Co oxide gradient library for the oxygen evolution reaction (OER). The combinatorial approach used in this study allows for a faster and more reliable investigation compared to the traditional step by step approach. The results provide a foundation for exploring other mixed-metal oxide combinations.
The development of an efficient catalyst for the oxygen evolution reaction (OER) is critical to fulfilling the mission of hydrogen generation by water splitting. Various multicomponent systems have been investigated so far for the OER, although a systematic investigation is lacking and there are discrepancies as to which formulations make the best catalyst. Here, we perform a systematic investigation of a ternary Ni-Fe-Co oxide gradient library for the OER, using a combinatorial approach. This approach allows a much faster investigation of a vast compositional space compared to the traditional step by step approach. Also, it enables a more reliable comparison of the various catalysts as they all experience the same process and measurement conditions. We used the spray pyrolysis technique in combinatorial electrocatalyst screening for the first time for the generation of a gradient library of Ni-Fe-Co oxides. Combinatorial electrochemical screening using a scanning droplet cell (SDC) set up allowed the study of 94 different points in the compositional space of the trimetallic Ni-Fe-Co oxide library, which was used to deduce a composition-activity relationship. At 10 mA cm(-2), the investigated points spanned an overpotential window of 294-320 mV, with the best performing ternary oxides being confined to a compositional space of 4-15% Fe, 4-15% Co, and 80-90% Ni. This study provides a foundation for broad exploration of other mixed-metal oxide combinations.

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