4.7 Article

3D-printed NiFe-layered double hydroxide pyramid electrodes for enhanced electrocatalytic oxygen evolution reaction

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SCIENTIFIC REPORTS
卷 12, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41598-021-04347-9

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  1. Primary research program of the Korea Electrotechnology Research Institute through the National Research Council of Science & Technology (NST) - Ministry of Science and ICT [21A01020]
  2. Fundamental Research Program of the Korean Institute of Materials Science through the National Research Council of Science & Technology (NST) - Ministry of Science and ICT [PNK6680]
  3. Hydrogen Energy Innovation Technology Development Program of the NRF in the Republic of Korea [2019M3E6A106367512]
  4. National Research Council of Science & Technology (NST), Republic of Korea [21A01020, PNK6680] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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This study presents an effective strategy for the fabrication of highly active three-dimensional (3D)-printed NiFe-layered double hydroxide (LDH) pyramid electrode for oxygen evolution reaction (OER). The 3D-printed NiFe-LDH pyramid electrode shows improved OER activity and durability compared to traditional electrodes.
Electrochemical water splitting has been considered one of the most promising methods of hydrogen production, which does not cause environmental pollution or greenhouse gas emissions. Oxygen evolution reaction (OER) is a significant step for highly efficient water splitting because OER involves the four electron transfer, overcoming the associated energy barrier that demands a potential greater than that required by hydrogen evolution reaction. Therefore, an OER electrocatalyst with large surface area and high conductivity is needed to increase the OER activity. In this work, we demonstrated an effective strategy to produce a highly active three-dimensional (3D)-printed NiFe-layered double hydroxide (LDH) pyramid electrode for OER using a three-step method, which involves direct-ink-writing of a graphene pyramid array and electrodeposition of a copper conducive layer and NiFe-LDH electrocatalyst layer on printed pyramids. The 3D pyramid structures with NiFe-LDH electrocatalyst layers increased the surface area and the active sites of the electrode and improved the OER activity. The overpotential (eta) and exchange current density (i(0)) of the NiFe-LDH pyramid electrode were further improved compared to that of the NiFe-LDH deposited Cu (NiFe-LDH/Cu) foil electrode with the same base area. The 3D-printed NiFe-LDH electrode also exhibited excellent durability without potential decay for 60 h. Our 3D printing strategy provides an effective approach for the fabrication of highly active, stable, and low-cost OER electrocatalyst electrodes.

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