4.8 Article

Grain Boundaries Boost Oxygen Evolution Reaction in NiFe Electrocatalysts

期刊

SMALL METHODS
卷 5, 期 2, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smtd.202000755

关键词

electrocatalysts; grain boundaries; in situ electrochemical microscopy; NiFe alloys; oxygen evolution reaction

资金

  1. Future Material Discovery Program, Basic Research Laboratory of the National Research Foundation of Korea (NRF) - Ministry of Science and Information & Communication Technology (ICT) (MSIT) [2018M3D1A1058793]
  2. Korean government [2018R1A4A1022647]
  3. NRF - MSIT [2019M3E6A1103818]
  4. Basic Science Research Program through the NRF - MSIT [2017R1A2B3009135]
  5. Institute of Engineering Research at the Seoul National University
  6. Korea University - Korea Institute of Science and Technology (KU-KIST) school project

向作者/读者索取更多资源

This study found that the grain boundary density directly affects the overall oxygen evolution reaction (OER) process on the surface of NiFe electrocatalysts, with OER mainly occurring at the grain boundaries. Additionally, the grain boundary density alters the reaction determining steps and a significant work function difference exists between the inside of grains and grain boundaries.
In a polycrystalline material, the grain boundaries (GBs) can be effective active sites for catalytic reactions by providing an electrodynamically favorable surface. Previous studies have shown that grain boundary density is related to the catalytic activity of the carbon dioxide reduction reaction, but there is still no convincing evidence that the GBs provide surfaces with enhanced activity for oxygen evolution reaction (OER). Combination of various electrochemical measurements and chemical analysis reveals the GB density at surface of NiFe electrocatalysts directly affects the overall OER. In situ electrochemical microscopy vividly shows that the OER occurs mainly at the GB during overall reaction. It is observed that the reaction determining steps are altered by grain boundary densities and the meaningful work function difference between the inside of grain and GBs exists. High-resolution transmission electron microscopy shows that extremely high index planes are exposed at the GBs, enhancing the oxygen evolution activity. The specific nature of GBs and its effects on the OER demonstrated in this study can be applied to the various polycrystalline electrocatalysts.

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