Although proton exchange membrane (PEM) water electrolyzers offer a promising means for generation of hydrogen fuel from solar and wind energy, in acidic environments the corresponding anodic oxygen evolution reaction (OER) remains a bottleneck. Because the activity and stability of electrocatalysts depend significantly on physicochemical properties, material surface and interface engineering can offer a practical way to boost performance. To date, significant advances have been made using a judicious combination of advanced theoretical computations and spectroscopic characterizations. To provide a critical assessment of this field, we focus on the establishment of material property–catalytic activity relationships. We start with a detailed...
This research focuses on durable, high-performance materials and interfaces for advanced water split...
Various bifunctional metal-oxide composites have recently been proposed as advanced hydrogen oxidati...
Green hydrogen production can only be realized via water electrolysis using renewable energy sources...
Developing efficient electrocatalysts toward acidic oxygen evolution reaction (AOER) is of vital sig...
The low efficiency of the electrocatalytic oxidation of water to O<sub>2</sub> (oxygen evolution rea...
Electrocatalytic oxygen evolution reaction (OER) is a crucial anode reaction where electrocatalysts ...
Electrochemical devices, such as fuel cells and electrolysers, are said to be at the forefront of a ...
Abstract Hydrogen is the most preferred choice as an energy source to replace the nonrenewable energ...
Hydrogen energy-based electrochemical energy conversion technologies offer the promise of enabling a...
© 2020 The Royal Society of Chemistry. Hydrogen is a promising clean energy carrier and plays a sign...
In proton-exchange-membrane (PEM) fuel cells, electrochemical oxygen reduction reaction (ORR) on the...
Proton-exchange membrane water electrolyzers (PEMWEs) will play a key role in future sustainable hyd...
In order to adopt water electrolyzers as a main hydrogen production system, it is critical to develo...
Electrochemical water splitting has received significant attention recently for the production of gr...
A fundamental change has been achieved in understanding surface electrochemistry due to the profound...
This research focuses on durable, high-performance materials and interfaces for advanced water split...
Various bifunctional metal-oxide composites have recently been proposed as advanced hydrogen oxidati...
Green hydrogen production can only be realized via water electrolysis using renewable energy sources...
Developing efficient electrocatalysts toward acidic oxygen evolution reaction (AOER) is of vital sig...
The low efficiency of the electrocatalytic oxidation of water to O<sub>2</sub> (oxygen evolution rea...
Electrocatalytic oxygen evolution reaction (OER) is a crucial anode reaction where electrocatalysts ...
Electrochemical devices, such as fuel cells and electrolysers, are said to be at the forefront of a ...
Abstract Hydrogen is the most preferred choice as an energy source to replace the nonrenewable energ...
Hydrogen energy-based electrochemical energy conversion technologies offer the promise of enabling a...
© 2020 The Royal Society of Chemistry. Hydrogen is a promising clean energy carrier and plays a sign...
In proton-exchange-membrane (PEM) fuel cells, electrochemical oxygen reduction reaction (ORR) on the...
Proton-exchange membrane water electrolyzers (PEMWEs) will play a key role in future sustainable hyd...
In order to adopt water electrolyzers as a main hydrogen production system, it is critical to develo...
Electrochemical water splitting has received significant attention recently for the production of gr...
A fundamental change has been achieved in understanding surface electrochemistry due to the profound...
This research focuses on durable, high-performance materials and interfaces for advanced water split...
Various bifunctional metal-oxide composites have recently been proposed as advanced hydrogen oxidati...
Green hydrogen production can only be realized via water electrolysis using renewable energy sources...