It is very important to explore novel synthesis strategies for constructing highly active and inexpensive electrocatalysts for water-splitting. In present work, a novel and efficient coordination-polymerization-pyrolysis (CPP) strategy was developed to prepare cobalt phosphide nanoparticles modified N-doped porous carbon spheres (CoP@NPCSs) hybrids as a powerful catalyst for overall water-splitting (OWS). It can be found that both the carbonization temperatures and the metal contents affect the electrocatalytic performances. As a result, a device assembled with CoP@NPCSs demonstrates low potential (1.643 V @ 10 mA·cm–2) and good stabilization for OWS. Besides, other transition metal phosphides (TMPs)-based materials also can be synthesized ...
Electrochemical water splitting into hydrogen and oxygen is a promising technology for sustainable e...
Electrochemical water splitting into hydrogen and oxygen is a promising technology for sustainable e...
Rational design and development of highly active, low-cost, and stable nonprecious metal electrocata...
Noble-metal-free hydrogen/oxygen evolution reaction (HER/OER) electrocatalysts, especially bifunctio...
Developing highly efficient and low-cost electrocatalyst for water splitting to produce H<sub>2</sub...
Highly efficient non-noble materials for water splitting are essential for renewable energy applicat...
The preparation of highly active, sustainable, nonprecious metal materials as hydrogen evolution and...
The design of active, robust, and nonprecious electrocatalysts with both H2 and O2 evolution reactio...
We report a simple, facile, and safe route for preparation of cobalt–cobalt phosphide (Co/Co2P) nano...
International audienceThe development of cost-effective, high-performance, and robust bifunctional e...
The design of active, robust, and nonprecious electrocatalysts with both H<sub>2</sub> and O<sub>2</...
International audienceThe development of cost-effective, high-performance, and robust bifunctional e...
International audienceThe development of cost-effective, high-performance, and robust bifunctional e...
International audienceThe development of cost-effective, high-performance, and robust bifunctional e...
The design of active, robust, and nonprecious electrocatalysts with both H2 and O2 evolution reactio...
Electrochemical water splitting into hydrogen and oxygen is a promising technology for sustainable e...
Electrochemical water splitting into hydrogen and oxygen is a promising technology for sustainable e...
Rational design and development of highly active, low-cost, and stable nonprecious metal electrocata...
Noble-metal-free hydrogen/oxygen evolution reaction (HER/OER) electrocatalysts, especially bifunctio...
Developing highly efficient and low-cost electrocatalyst for water splitting to produce H<sub>2</sub...
Highly efficient non-noble materials for water splitting are essential for renewable energy applicat...
The preparation of highly active, sustainable, nonprecious metal materials as hydrogen evolution and...
The design of active, robust, and nonprecious electrocatalysts with both H2 and O2 evolution reactio...
We report a simple, facile, and safe route for preparation of cobalt–cobalt phosphide (Co/Co2P) nano...
International audienceThe development of cost-effective, high-performance, and robust bifunctional e...
The design of active, robust, and nonprecious electrocatalysts with both H<sub>2</sub> and O<sub>2</...
International audienceThe development of cost-effective, high-performance, and robust bifunctional e...
International audienceThe development of cost-effective, high-performance, and robust bifunctional e...
International audienceThe development of cost-effective, high-performance, and robust bifunctional e...
The design of active, robust, and nonprecious electrocatalysts with both H2 and O2 evolution reactio...
Electrochemical water splitting into hydrogen and oxygen is a promising technology for sustainable e...
Electrochemical water splitting into hydrogen and oxygen is a promising technology for sustainable e...
Rational design and development of highly active, low-cost, and stable nonprecious metal electrocata...