A thorough understanding of the kinetic competition between desired water oxidation/electron extraction processes and any detrimental surface recombination is required to achieve high water oxidation efficiencies in transition-metal oxide systems. The kinetics of these processes in high Faradaic efficiency tungsten trioxide (WO3) photoanodes (>85%) are monitored herein by transient diffuse reflectance spectroscopy and correlated with transient photocurrent data for electron extraction. Under anodic bias, efficient hole transfer to the aqueous electrolyte is observed within a millisecond. In contrast, electron extraction is found to be comparatively slow (∼10 ms), increasing in duration with nanoneedle length. The relative rates of these wat...
Nanostructured WO3 thin films were prepd., and photooxidn. of water at such films was studied in a p...
Photoelectrochemical water splitting is a promising approach for the carbon‐free production of hydro...
Tungsten trioxide (WO3) is being investigated as one of the most promising materials for water oxida...
A thorough understanding of the kinetic competition between desired water oxidation/electron extract...
Oxygen vacancies are common to most metal oxides, whether intentionally incorporated or otherwise, a...
Photocatalytic water splitting has attracted significant interest in recent decades as it offers a c...
In metal oxide-based photoelectrochemical devices, the spatial separation of photogenerated electron...
Photoelectrochemical water splitting cells could offer a simple, yet efficient approach to solar hyd...
Generating charge carriers with lifetimes long enough to drive catalysis is a critical aspect for bo...
The development of efficient and stable photoelectrodes keeps on being critical in the implementatio...
Here we report an electrochemical reduction-induced photocurrent enhancement up to an order of magni...
This work provides new insights in the field of applied photoelectro chemistry based on the use of n...
Photoelectrochemical (PEC) water splitting is a sustainable and environmentally friendly method for ...
Tungsten oxide (WO3) electrodes were synthesized by spin-coating an ammonium metatungstate sol. Inst...
AbstractThis work provides new insights in the field of applied photoelectro chemistry based on the ...
Nanostructured WO3 thin films were prepd., and photooxidn. of water at such films was studied in a p...
Photoelectrochemical water splitting is a promising approach for the carbon‐free production of hydro...
Tungsten trioxide (WO3) is being investigated as one of the most promising materials for water oxida...
A thorough understanding of the kinetic competition between desired water oxidation/electron extract...
Oxygen vacancies are common to most metal oxides, whether intentionally incorporated or otherwise, a...
Photocatalytic water splitting has attracted significant interest in recent decades as it offers a c...
In metal oxide-based photoelectrochemical devices, the spatial separation of photogenerated electron...
Photoelectrochemical water splitting cells could offer a simple, yet efficient approach to solar hyd...
Generating charge carriers with lifetimes long enough to drive catalysis is a critical aspect for bo...
The development of efficient and stable photoelectrodes keeps on being critical in the implementatio...
Here we report an electrochemical reduction-induced photocurrent enhancement up to an order of magni...
This work provides new insights in the field of applied photoelectro chemistry based on the use of n...
Photoelectrochemical (PEC) water splitting is a sustainable and environmentally friendly method for ...
Tungsten oxide (WO3) electrodes were synthesized by spin-coating an ammonium metatungstate sol. Inst...
AbstractThis work provides new insights in the field of applied photoelectro chemistry based on the ...
Nanostructured WO3 thin films were prepd., and photooxidn. of water at such films was studied in a p...
Photoelectrochemical water splitting is a promising approach for the carbon‐free production of hydro...
Tungsten trioxide (WO3) is being investigated as one of the most promising materials for water oxida...