FeNi 2 S 4 -A Potent Bifunctional Efficient Electrocatalyst for the Overall Electrochemical Water Splitting in Alkaline Electrolyte.
Mohamed Barakat Zakaria HegazyJudith ZanderMorten WeissChristopher SimonPhilipp GerschelSebastian A SandenMathias SmialkowskiDavid TetzlaffTobias KullRoland MarschallUlf-Peter ApfelPublished in: Small (Weinheim an der Bergstrasse, Germany) (2024)
For a carbon-neutral society, the production of hydrogen as a clean fuel through water electrolysis is currently of great interest. Since water electrolysis is a laborious energetic reaction, it requires high energy to maintain efficient and sustainable production of hydrogen. Catalytic electrodes can reduce the required energy and minimize production costs. In this context, herein, a bifunctional electrocatalyst made from iron nickel sulfide (FeNi 2 S 4 [FNS]) for the overall electrochemical water splitting is introduced. Compared to Fe 2 NiO 4 (FNO), FNS shows a significantly improved performance toward both OER and HER in alkaline electrolytes. At the same time, the FNS electrode exhibits high activity toward the overall electrochemical water splitting, achieving a current density of 10 mA cm -2 at 1.63 V, which is favourable compared to previously published nonprecious electrocatalysts for overall water splitting. The long-term chronopotentiometry test reveals an activation followed by a subsequent stable overall cell potential at around 2.12 V for 20 h at 100 mA cm -2 .
Keyphrases
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- single cell
- randomized controlled trial
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- oxide nanoparticles