4.8 Article

1D/2D Cobalt-Based Nanohybrids as Electrocatalysts for Hydrogen Generation

Journal

ADVANCED FUNCTIONAL MATERIALS
Volume 30, Issue 14, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.201908467

Keywords

carbon nanotubes; cobalt oxides; electrodes; hydrogen evolution reaction; sodium cobalt phosphates

Funding

  1. Natural Science and Engineering Research Council of Canada (NSERC)
  2. Canada Research Chairs program
  3. UNESCO Chair MATECSS
  4. UESTC
  5. National Natural Science Foundation of China [5171101224]
  6. China Postdoctoral Science Foundation [Y02006023607941]

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The synergistic effects derived from optimizing the chemical and structural features of electrocatalysts permit them to attain remarkable activity and stability. Herein, 1D/2D cobalt-based nanohybrid (CoNH) electrodes are developed; the structural design consists of Co3O4 electrospun nanoribbons (NRs) deposited onto a carbon fiber paper substrate where Co3O4 nanosheets are subsequently grown via an electrodeposition step and UV/ozone treatment. The content of noncovalently functionalized carbon nanotubes within the Co3O4 NRs is first tuned to enhance their charge transfer properties and mechanical stability. The electrocatalytic activity of the electrodes is further improved by a phosphorus modification of the 1D NRs, resulting in the formation of NaCoPO4. The optimized 1D/2D CoNH electrode, i.e., ED-0.09 wt% fCNTs/P-CoNHs, displays a similar performance to that of platinum in 0.25 m Na2S/0.35 m Na2SO3 (Tafel slope approximate to 102 mV dec(-1) for the former and approximate to 96 mV dec(-1) for the latter) and outstanding stability for up to 48 h. The versatility and high activity of this electrode is also demonstrated according to tests in a conventional water splitting system (cell voltage 1.55V, to produce 10 mA cm(-2)) and a solar-driven electrolyzer (1 m KOH).

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