Ultrahigh-efficiency photoelectrochemical water oxidation using modified hematite (alpha-Fe2O3) nanorod arrays is reported. The hematite nanorod arrays are synthesized using chemical bath deposition and further modified by hydrogen treatment, loading of a similar to 3.5-nm-thick TiO2 overlayer, and deposition of a cobalt phosphate (CoPi) catalyst. Although each modification method is well known, an elaborate optimization of the combined modification methods achieves a stable photocurrent density of similar to 6 mA cm(-2) at 1.23 V vs. RHE over 100 h under AM 1.5G irradiation (100 mW cm(-2)) with the stoichiometric O-2 and H-2 evolutions at similar to 95% of Faradaic efficiency. To the best of our knowledge, this is the highest photocurrent ...
A unique nanostructured rod-like morphol. of hematite (α-Fe2O3), designed with no grain boundaries, ...
There is a global need to reduce the use of fossil fuels due to the negative impacts of anthropogeni...
Hematite (α‐Fe2O3) is a promising candidate as a semiconducting photoanode for photoelectrochemical ...
As one of the most popular photoanode materials for photoelectrochemical (PEC) water splitting, hema...
DoctorHydrogen is very promising fuel that may become one of the important energy carrier to meet ou...
In this paper, we report a novel strategy for surface treatment of hematite nanorods for efficient p...
Hydrogen production from solar and photoelectrochemical water splitting based on modified nanostruct...
High-temperature thermal oxidation of an Fe foil produces a high-quality, crystalline hematite nanof...
DoctorHematite (-Fe2O3) is a photoactive material which is widely investigated in the research field...
Photoelectrochemical (PEC) solar water splitting represents a clean and sustainable approach for hyd...
Designing an efficient photoanode is of great importance for photoassisted solar water splitting. He...
It has been recently demonstrated that the photoactivity toward oxygen evolution of a number of n-ty...
A unique nanostructured rod-like morphology of hematite (a-Fe2O3), designed with no grain boundaries...
AbstractHematite is recognized as an excellent photocatalyst for photoelectrochemical photoanodes fo...
Design of efficient photoelectrodes for water oxidation requires careful optimization of the morphol...
A unique nanostructured rod-like morphol. of hematite (α-Fe2O3), designed with no grain boundaries, ...
There is a global need to reduce the use of fossil fuels due to the negative impacts of anthropogeni...
Hematite (α‐Fe2O3) is a promising candidate as a semiconducting photoanode for photoelectrochemical ...
As one of the most popular photoanode materials for photoelectrochemical (PEC) water splitting, hema...
DoctorHydrogen is very promising fuel that may become one of the important energy carrier to meet ou...
In this paper, we report a novel strategy for surface treatment of hematite nanorods for efficient p...
Hydrogen production from solar and photoelectrochemical water splitting based on modified nanostruct...
High-temperature thermal oxidation of an Fe foil produces a high-quality, crystalline hematite nanof...
DoctorHematite (-Fe2O3) is a photoactive material which is widely investigated in the research field...
Photoelectrochemical (PEC) solar water splitting represents a clean and sustainable approach for hyd...
Designing an efficient photoanode is of great importance for photoassisted solar water splitting. He...
It has been recently demonstrated that the photoactivity toward oxygen evolution of a number of n-ty...
A unique nanostructured rod-like morphology of hematite (a-Fe2O3), designed with no grain boundaries...
AbstractHematite is recognized as an excellent photocatalyst for photoelectrochemical photoanodes fo...
Design of efficient photoelectrodes for water oxidation requires careful optimization of the morphol...
A unique nanostructured rod-like morphol. of hematite (α-Fe2O3), designed with no grain boundaries, ...
There is a global need to reduce the use of fossil fuels due to the negative impacts of anthropogeni...
Hematite (α‐Fe2O3) is a promising candidate as a semiconducting photoanode for photoelectrochemical ...