We report a simple, facile, and safe route for preparation of cobalt–cobalt phosphide (Co/Co2P) nanoparticles and demonstrate their application as efficient low-cost catalysts for electrochemical water splitting. The catalyst achieves good performance in catalyzing both the cathode and anode half-cell water-splitting reactions in 1.0 M KOH and the hydrogen evolution reaction in an acidic electrolyte, 0.5 M H2SO4. For the oxygen evolution reaction in 1.0 M KOH, a current of 10 mA cm–2 was attained at 0.39 V overpotential on a glassy carbon electrode, while an overpotential of 0.19 V was attained at 50 mA cm–2 when the catalyst was supported on nickel foam
The development of a highly efficient and stable bifunctional electrocatalyst for water splitting is...
The development of a highly efficient and stable bifunctional electrocatalyst for water splitting is...
Hydrogen production via water splitting has been extensively explored over the past few decades, and...
Highly efficient non-noble materials for water splitting are essential for renewable energy applicat...
The versatile cobalt-phosphorus (Co-P) precursor was synthesized on Ni foam (NF) with an electrodepo...
Hydrogen production via water splitting is a promising pathway to a clean energy resource. Herein we...
Electrochemical water splitting into hydrogen and oxygen is a promising technology for sustainable e...
Electrochemical water splitting in alkaline solution plays a growing role in alternative energy devi...
The development of high-performance and cost-effective earth-abundant transition metal-based electro...
Electrochemical water splitting into hydrogen and oxygen is a promising technology for sustainable e...
Exploration of proficient electrocatalyst from earth-abundant nonprecious metals in lieu of noble me...
The sustainable hydrogen fuel from water electrolysis demands the development of efficient and robus...
Rational design and development of highly active, low-cost, and stable nonprecious metal electrocata...
The preparation of highly active and low-cost electrocatalysts is a major challenge for water electr...
Noble-metal-free hydrogen/oxygen evolution reaction (HER/OER) electrocatalysts, especially bifunctio...
The development of a highly efficient and stable bifunctional electrocatalyst for water splitting is...
The development of a highly efficient and stable bifunctional electrocatalyst for water splitting is...
Hydrogen production via water splitting has been extensively explored over the past few decades, and...
Highly efficient non-noble materials for water splitting are essential for renewable energy applicat...
The versatile cobalt-phosphorus (Co-P) precursor was synthesized on Ni foam (NF) with an electrodepo...
Hydrogen production via water splitting is a promising pathway to a clean energy resource. Herein we...
Electrochemical water splitting into hydrogen and oxygen is a promising technology for sustainable e...
Electrochemical water splitting in alkaline solution plays a growing role in alternative energy devi...
The development of high-performance and cost-effective earth-abundant transition metal-based electro...
Electrochemical water splitting into hydrogen and oxygen is a promising technology for sustainable e...
Exploration of proficient electrocatalyst from earth-abundant nonprecious metals in lieu of noble me...
The sustainable hydrogen fuel from water electrolysis demands the development of efficient and robus...
Rational design and development of highly active, low-cost, and stable nonprecious metal electrocata...
The preparation of highly active and low-cost electrocatalysts is a major challenge for water electr...
Noble-metal-free hydrogen/oxygen evolution reaction (HER/OER) electrocatalysts, especially bifunctio...
The development of a highly efficient and stable bifunctional electrocatalyst for water splitting is...
The development of a highly efficient and stable bifunctional electrocatalyst for water splitting is...
Hydrogen production via water splitting has been extensively explored over the past few decades, and...