CuFeO₂ is recognized as a potential photocathode for photo(electro)chemical water splitting. However, photocurrents with CuFeO₂-based systems are rather low so far. In order to optimize charge carrier separation and water reduction kinetics, defined CuFeO₂/Pt, CuFeO₂/Ag, and CuFeO₂/NiOx(OH)y heterostructures are made in this work through a photodeposition procedure based on a 2H CuFeO₂ hexagonal nanoplatelet shaped powder. However, water splitting performance tests in a closed batch photoreactor show that these heterostructured powders exhibit limited water reduction efficiencies. To test whether Fermi level pinning intrinsically limits the water reduction capacity of CuFeO₂, the Fermi level tunability in CuFeO₂ is evaluated by creating CuF...
Metal oxides are an important family of semiconductors for effective photoelectrodes in solar‐to‐che...
Layered double hydroxides (LDHs) are bimetallic hydroxides that currently attract considerable atten...
Delafossite CuFeO2 is a promising material for solar hydrogen production, but is limited by poor pho...
CuFeO₂ is recognized as a potential photocathode for photo(electro)chemical water splitting. However...
CuFeO2 is recognized as a potential photocathode for photo(electro)chemical water splitting. However...
Studies on water-splitting p-type oxide electrodes based on nontoxic earth-abundant elements are sca...
Solar photo(electro)chemical (PEC) water splitting is regarded as a promising ways of renewable hydr...
Metal oxide‐based photoelectrodes for solar water splitting often utilize nanostructures to increase...
The path to realizing low-cost, stable, and earth-abundant photoelectrodes can be enabled through a ...
Metal oxides are stable, earth abundant semiconductors for the photochemical conversion of sunlight ...
p-Type delafossite CuFeO2 has recently been reported as a promising candidate for direct photoelectr...
The path to realizing low-cost, stable, and earth-abundant photoelectrodes can be enabled through a ...
Metal oxides represent an important family of semiconductors for fabricating effective photoelectrod...
In recent years, development of sustainable energy has been playing an important role in creating an...
Delafossite CuFeO2 is a p-type oxide semiconductor with a band gap of ∼1.5 eV, which has attracted g...
Metal oxides are an important family of semiconductors for effective photoelectrodes in solar‐to‐che...
Layered double hydroxides (LDHs) are bimetallic hydroxides that currently attract considerable atten...
Delafossite CuFeO2 is a promising material for solar hydrogen production, but is limited by poor pho...
CuFeO₂ is recognized as a potential photocathode for photo(electro)chemical water splitting. However...
CuFeO2 is recognized as a potential photocathode for photo(electro)chemical water splitting. However...
Studies on water-splitting p-type oxide electrodes based on nontoxic earth-abundant elements are sca...
Solar photo(electro)chemical (PEC) water splitting is regarded as a promising ways of renewable hydr...
Metal oxide‐based photoelectrodes for solar water splitting often utilize nanostructures to increase...
The path to realizing low-cost, stable, and earth-abundant photoelectrodes can be enabled through a ...
Metal oxides are stable, earth abundant semiconductors for the photochemical conversion of sunlight ...
p-Type delafossite CuFeO2 has recently been reported as a promising candidate for direct photoelectr...
The path to realizing low-cost, stable, and earth-abundant photoelectrodes can be enabled through a ...
Metal oxides represent an important family of semiconductors for fabricating effective photoelectrod...
In recent years, development of sustainable energy has been playing an important role in creating an...
Delafossite CuFeO2 is a p-type oxide semiconductor with a band gap of ∼1.5 eV, which has attracted g...
Metal oxides are an important family of semiconductors for effective photoelectrodes in solar‐to‐che...
Layered double hydroxides (LDHs) are bimetallic hydroxides that currently attract considerable atten...
Delafossite CuFeO2 is a promising material for solar hydrogen production, but is limited by poor pho...