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 language | English |
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Article number | 113246 |
Number of pages | 12 |
Journal | Materials Research Bulletin |
Volume | 184 |
DOIs | |
Publication status | Published - Apr 2025 |
Keywords
- FeCo-CdSe
- Hydrogen evolution
- Metal chalcogenides
- Nanosheets
- Redox-active sites