Metal-ionic-conductor potassium ferrite nanocrystals with intrinsic superhydrophilic surfaces for electrocatalytic water splitting at ultrahigh current densities
Autor: | Guangtao Yu, Wei Chen, Ran Zhang, Xuri Huang, Decheng Zeng, Juan Jian, Mingcheng Jiang, Limin Chang, Hongming Yuan, Shouhua Feng |
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Rok vydání: | 2021 |
Předmět: |
Electrolysis
Materials science Renewable Energy Sustainability and the Environment Oxygen evolution 02 engineering and technology General Chemistry Electrolyte 010402 general chemistry 021001 nanoscience & nanotechnology Electrocatalyst 01 natural sciences Cathode 0104 chemical sciences Anode law.invention Chemical engineering law Water splitting General Materials Science 0210 nano-technology Hydrogen production |
Zdroj: | Journal of Materials Chemistry A. 9:7586-7593 |
ISSN: | 2050-7496 2050-7488 |
DOI: | 10.1039/d1ta00693b |
Popis: | Developing new electrocatalysts with high activity and good stability for hydrogen evolution reactions (HER) and oxygen evolution reactions (OER), in particular superhydrophilic ones that can significantly enhance mass transfer between electrodes and electrolytes at high current densities, remains a challenge. Herein, we report that K2Fe4O7 nanocrystals (nano-KFO) are hydrothermally grown on a nickel foam (NF). The formed nano-KFO/NF exhibits good stability and delivers an extremely large current density up to 2000 mA cm−2 at low overpotentials of 343 mV (HER) and 421 mV (OER) in 1.0 M KOH electrolyte. By employing nano-KFO/NF as both cathode and anode, a water electrolyzer can operate over 60 hours at a current density of 1500 mA cm−2 with cell voltages of 2.01 V in 1.0 M KOH and 1.89 V in 10.0 M KOH, demonstrating the great potential of this bifunctional electrocatalyst for large-scale hydrogen production. Our theoretical calculation reveals that the structure has instinct high catalytic activities for both HER and OER in alkaline media. In addition, the large surface area, good conductivity, and inherent superhydrophilic properties of nano-KFO lead to its highly efficient electrocatalytic water splitting performance. |
Databáze: | OpenAIRE |
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