Rational design of transition metal FeCo-supported CdSe hybrid (FeCo–CdSe) nanosheet electrocatalyst for alkaline OER and HER

Tauseef Munawar, Saman Fatima, Mostafa A. Ismail, Faisal Iqbal, Awais Khalid, Ambreen Bashir, Muhammad Rafaqat, Shoukat Alim Khan, Muammer Koc, Chang Feng Yan, Suleyman I. Allakhverdiev

Research output: Contribution to journalArticlepeer-review

6 Scopus citations

Abstract

Considering sustainable OER and HER activity, developing highly productive and earth-abundant bifunctional electrocatalysts is emerging as a massive challenge for revolutionizing the hydrogen economy. As effective new star electrocatalyst single-phase transition metals, chalcogenides are significantly exploring the critical bottlenecks of OER and HER reactions. The wrapped sheet-like structure of FeCo–CdSe with optimized electronic structure retained a large electrochemically active surface area of 2248 cm2/g, low charge transport resistance, higher conductivity, and more exposed active sites for boosted electrochemical reaction. The prepared FeCo–CdSe catalyst in the cell requires a very low overpotential of 181/167 mV to initiate OER/HER reaction at 10 mA/cm2 exchange current density and small Tafel slope 82.3/73.3 mV/dec with long-duration stability of 40/37 h OER/HER at constant current density without structural and morphological variations. This work proposed a design to develop single-phase metals and chalcogenides-based no-precious electrocatalysts with benchmark water-splitting efficiency for sustainable industrial hydrogen revolutions.

Original languageEnglish
Article number113246
JournalMaterials Research Bulletin
Volume184
DOIs
StatePublished - Apr 2025

Keywords

  • FeCo–CdSe
  • Hydrogen evolution
  • Metal chalcogenides
  • Nanosheets
  • Redox-active sites

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