Published July 2019 | Version v1
Journal article

In-situ formation of MOF derived mesoporous Co3N/amorphous N-doped carbon nanocubes as an efficient electrocatalytic oxygen evolution reaction

  • 1. Korea Electronics Technology Institute, Present address: Nano Materials and Components Research Center (Korea, Republic of)
  • 2. Sungkyunkwan University, Present address: School of Advanced Materials Science and Engineering (Korea, Republic of)
  • 3. Sungkyunkwan University, School of Advanced Materials Science and Engineering (Korea, Republic of)
  • 4. Institute for Advanced Engineering (IAE), Advanced Materials & Processing Center (Korea, Republic of)
  • 5. University of Wollongong, Australian Institute for Innovative Materials (AIIM) (Australia)
  • 6. Korea Electronics Technology Institute, Nano Materials and Components Research Center (Korea, Republic of)

Description

The suitable materials, metal nitrides, are a promising class of electrocatalyst materials for a highly efficient oxygen evolution reaction (OER) because they exhibit superior intrinsic conductivity and have higher sustainability than oxide-based materials. To our knowledge, for the first time, we report a designable synthesis of three-dimensional (3D) and mesoporous Co3N@amorphous N-doped carbon (AN-C) nanocubes (NCs) with well-controlled open-framework structures via monodispersed Co3[Co(CN)6]2 Prussian blue analogue (PBA) NC precursors using in situ nitridation and calcination processes. Co3N@AN-C NCs (2 h) demonstrate better OER activity with a remarkably low Tafel plot (69.6 mV·dec−1), low overpotential of 280 mV at a current density of 10 mA·cm−2. Additionally, excellent cycling stability in alkaline electrolytes was exhibited without morphological changes and voltage elevations, superior to most reported hierarchical structures of transition-metal nitride particles. The presented strategy for synergy effects of metal-organic frameworks (MOFs)-derived transition-metal nitrides-carbon hybrid nanostructures provides prospects for developing high-performance and advanced electrocatalyst materials. .

Additional details

Identifiers

Publishing Information

Journal Title
Nano Research (Print)
Journal Volume
12
Journal Issue
7
Journal Page Range
p. 1605-1611
ISSN
1998-0124

Optional Information

Copyright
Copyright (c) 2019 Tsinghua University Press and Springer-Verlag GmbH Germany, part of Springer Nature