Surmounting the sluggish water oxidation kinetics beyond the hole-dominated thermodynamic effect is a topic of great scientific interest to establish fully renewable hydrogen technology from solar-powered water splitting. Herein, we demonstrate that the bottleneck of photoelectrochemical water oxidation can be overcome via atomic manipulation of proton transfer on the polar surfaces of silicon carbide (SiC) photoanodes. On the typical carbon-face SiC, where proton-coupled electron transfer governed the interfacial hole transfer for water oxidation, substantial energy loss was inevitable due to the highly activated proton-transfer steps. Via preferentially exposing the silicon-face, we enabled surface-catalyzed barrierless O-H breaking with ...
Artificial photosynthesis, the process of generating usable fuels with solar power via photocatalysi...
In 1972 Fujishima and Honda conceptualised a photoelectrochemical cell for hydrogen generation via P...
Photoelectrochemical water splitting is a promising route for sustainable hydrogen production. Herei...
Surmounting the sluggish water oxidation kinetics beyond the hole-dominated thermodynamic effect is ...
Solar water splitting based on semiconductor photoelectrodes is a promising route to convert solar e...
Solar energy can be converted into chemical energy by photocatalytic water splitting to produce mole...
Silicon carbide (SiC), owing to its extraordinary chemical stability and refractory properties, is w...
As a virtually inexhaustible source, solar energy plays a major role in future global energy scenari...
Cubic silicon carbide (3C-SiC) is a promising photoelectrode material for solar water splitting due ...
Efficient overall photocatalytic water splitting for hydrogen production is still a huge challenging...
Hematite is a promising material for solar water splitting; however, high efficiency remains elusive...
Amorphous silicon carbide (a-SiC:H) is a promising material for photoelectrochemical water splitting...
Hydrogenases (H2 ases) are benchmark electrocatalysts for H2 production, both in biology and (photo)...
Accelerating proton transfer has been demonstrated as key to boosting water oxidation on semiconduct...
Amorphous silicon carbide (a‐SiC:H) is a promising material for photoelectrochemical water splitting...
Artificial photosynthesis, the process of generating usable fuels with solar power via photocatalysi...
In 1972 Fujishima and Honda conceptualised a photoelectrochemical cell for hydrogen generation via P...
Photoelectrochemical water splitting is a promising route for sustainable hydrogen production. Herei...
Surmounting the sluggish water oxidation kinetics beyond the hole-dominated thermodynamic effect is ...
Solar water splitting based on semiconductor photoelectrodes is a promising route to convert solar e...
Solar energy can be converted into chemical energy by photocatalytic water splitting to produce mole...
Silicon carbide (SiC), owing to its extraordinary chemical stability and refractory properties, is w...
As a virtually inexhaustible source, solar energy plays a major role in future global energy scenari...
Cubic silicon carbide (3C-SiC) is a promising photoelectrode material for solar water splitting due ...
Efficient overall photocatalytic water splitting for hydrogen production is still a huge challenging...
Hematite is a promising material for solar water splitting; however, high efficiency remains elusive...
Amorphous silicon carbide (a-SiC:H) is a promising material for photoelectrochemical water splitting...
Hydrogenases (H2 ases) are benchmark electrocatalysts for H2 production, both in biology and (photo)...
Accelerating proton transfer has been demonstrated as key to boosting water oxidation on semiconduct...
Amorphous silicon carbide (a‐SiC:H) is a promising material for photoelectrochemical water splitting...
Artificial photosynthesis, the process of generating usable fuels with solar power via photocatalysi...
In 1972 Fujishima and Honda conceptualised a photoelectrochemical cell for hydrogen generation via P...
Photoelectrochemical water splitting is a promising route for sustainable hydrogen production. Herei...