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Conductivity Modulation of 3D-Printed Shellular Electrodes through Embedding Nanocrystalline Intermetallics into Amorphous Matrix for Ultrahigh-Current Oxygen Evolution

  • Shuai Chang
  • , Yu Zhang
  • , Bangmin Zhang
  • , Xun Cao
  • , Lei Zhang
  • , Xiaolei Huang*
  • , Wanheng Lu
  • , Chun Yee Aaron Ong
  • , Shuang Yuan
  • , Chaojiang Li
  • , Yizhong Huang
  • , Kaiyang Zeng
  • , Liqun Li
  • , Wentao Yan*
  • , Jun Ding*
  • *Corresponding author for this work
  • National University of Singapore
  • Sun Yat-Sen University
  • Nanyang Technological University
  • Northwestern Polytechnical University Xian
  • Northeastern University China
  • Beijing Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

Scaling up commercial hydrogen production by water electrolysis requires efficient oxygen evolution reaction (OER) electrodes that can deliver large current densities (more than 500 mA cm−2) at low overpotentials. Here, a highly active and conductive shell-based cellular (Shellular) electrode is developed through a strategy of embedding nanocrystalline Ni3Nb intermetallics into an amorphous NiFe-OOH matrix. The tailor-made laser remelting process enables the dispersive precipitation of corrosion-resistant nanocrystalline Ni3Nb in large numbers. After in situ electrochemical activation in the self-developed growth-mode-control electrolyte, the amorphous NiFe-OOH nanosheets and nanocrystalline Ni3Nb are formed on the as-printed Inconel 718. The conductive atomic force microscopy (C-AFM) studies and density functional theory (DFT) calculations elucidate that nanocrystalline Ni3Nb can simultaneously enhance the conductivity and activity of the catalyst film. Additionally, a Shellular structure inspired by nature is designed, interestingly, its specific surface area keeps constant with increases in porosity. This design can result in a large surface area and high porosity but with less material cost. Using this electrochemically activated Shellular electrode for OER, a high current density of 1500 mA cm−2 is achieved at a record-low overpotential of 261 mV with good durability. This development may open the door for large-scale industrial water electrolysis.

Original languageEnglish
Article number2100968
JournalAdvanced Energy Materials
Volume11
Issue number28
DOIs
StatePublished - 28 Jul 2021

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Keywords

  • 3D printing
  • electrochemical activation
  • nanocrystalline
  • shellular electrodes
  • ultrahigh-current oxygen evolution

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