4.8 Article

Synergistic Interaction of Double/Simple Perovskite Heterostructure for Efficient Hydrogen Evolution Reaction at High Current Density

期刊

SMALL METHODS
卷 5, 期 2, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smtd.202000701

关键词

catalytic activity; durability; heterostructure; hydrogen evolution reaction; perovskite electrocatalyst

资金

  1. Natural Science Foundation of Heilongjiang Province [E2016055, JC2018014]
  2. State Key Laboratory of Rare Earth Resource Utilization [RERU 2018006]
  3. National Natural Science Foundation of China [51672072]

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The study introduces a novel catalyst PB0.94C-DSPH prepared using a specific double perovskite precursor, exhibiting excellent performance and long-term stability for hydrogen evolution reaction at high current densities.
Electrocatalytic hydrogen production for industrial level requires highly active and cost-effective catalysts at large current densities. Herein A-site Ba-deficient double perovskite PrBa0.94Co2O5+delta(PB0.94C) is used as a precursor for fabricating PB0.94C-based double/simple perovskite heterostructure (PB0.94C-DSPH). PB0.94C-DSPH with enhanced electrochemical surface area, more hydrophilic surface, and high conductivity ensures abundant active sites, rapid release of gas, and efficient charge transfer at high current densities. The resultant PB0.94C-DSPH delivers the overpotential of 364 mV at a current density of 500 mA cm(-2)for hydrogen evolution reaction in 1.0mKOH solution, along with excellent long-term durability. Promisingly, the electrolyzer with PB0.94C-DSPH cathode and NiFe-layered double hydroxide anode demonstrates high performance for overall water splitting by yielding high current density of 500 mA cm(-2)at 1.93 V. Density functional theory calculations indicate that the double/simple perovskite heterostructure promotes the water adsorption, the dissociation of molecular H2O, and the OH*desorption considerably, which controls the whole hydrogen evolution process. The proposed PB0.94C-DSPH solves the problem of low hydrogen-evolution efficiency at high current density faced by noble metal-based catalysts in basic environment. This study may provide a route to explore high-demand elements in the earth for addressing the critical catalysts in clean-energy utilizations.

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