Constructing built-in electric field in oxygen vacancies-enriched FeO-FeSe heterojunctions supported on reduced graphene oxide for efficient overall water splitting.

J Colloid Interface Sci

College of Materials Science and Engineering, Institute for Graphene Applied Technology Innovation, Qingdao University, Qingdao 266071, China; College of Materials Science and Engineering, Linyi University, Linyi 276000 Shandong, China. Electronic address:

Published: November 2024

AI Article Synopsis

  • Researchers developed a new electrocatalytic water-splitting catalyst using a FeO-FeSe heterojunction with oxygen vacancies on reduced graphene oxide (rGO) through a simple hydrothermal method.
  • * The combination of different Fermi levels in FeO and FeSe creates a built-in electric field (BEF) that improves charge separation and enhances the catalyst's activity by optimizing hydrogen/oxygen intermediate adsorption.
  • * Experimental results show that this catalyst demonstrates impressive hydrogen and oxygen production with low overpotentials, and a water electrolyzer using it only requires 1.78 V to reach a current density of 100 mA⋅cm.

Article Abstract

Combining interfacial oxygen vacancy engineering with a built-in electric field (BEF) technique is an efficient way to build efficient and practical electrocatalytic water-splitting catalysts. In this study, a FeO-FeSe heterojunction catalyst with oxygen vacancies supported on reduced graphene oxide (rGO) was designed and successfully fabricated using a simple two-step hydrothermal method. Owing to the different Fermi levels of FeO and FeSe, a BEF was generated at the interface, which enhanced the separation of negative and positive charges, thus optimizing the adsorption of hydrogen/oxygen intermediates on the heterostructures and improving the activity of the catalyst. Experimental results show that FeO-FeSe/rGO/NF exhibits excellent hydrogen and oxygen evolution performances, with low overpotentials of 234/300 mV at 100 mA⋅cm. A water electrolyzer assembled with FeO-FeSe/rGO/NF as both the anode and cathode requires only a small potential of 1.78 V to reach a current density of 100 mA⋅cm. This study provides an innovative approach for constructing a catalyst with excellent electrocatalytic performance for overall water splitting.

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Source
http://dx.doi.org/10.1016/j.jcis.2024.07.117DOI Listing

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