A new strategy for surface treatment of hematite nanoplates for efficient photoelectrochemical (PEC) performances is proposed. Silver orthophosphate (Ag₃PO₄) has been adopted to mediate the formation of α-Fe₂O₃ films. Phosphate ions in Ag₃PO₄ is found to cause a significant morphology change during annealing process, from β-FeOOH nanorod arrays to hematite nanoplates. Meanwhile, Ag ions is doped into α-Fe₂O₃ film. The obtained nanoplate structured Fe₂O₃ –Ag–P films demonstrate much higher photoelectrochemical performance as photoanodes than the bare Fe₂O₃ nanorod thin films. The effects of phosphate and silver ions on the morphology, surface characteristics and the PEC properties of the photoanodes are investigated
In this paper, we report a novel strategy for surface treatment of hematite nanorods for efficient p...
The alpha phase of hematite (α-Fe2O3) is one of the most promising catalysts for photoelectrochemica...
AbstractDue to the band gap of hematite (α-Fe2O3, Eg = 2.1 eV) in visible light region, it was regar...
A new strategy for surface treatment of hematite nanoplates for efficient photoelectrochemical (PEC)...
The recent momentum in energy research has simplified converting solar to electrical energy through ...
The recent momentum in energy research has simplified converting solar to electrical energy through ...
The recent momentum in energy research has simplified converting solar to electrical energy through ...
Photo-electrochemical (PEC) water splitting of hematite photoanodes suffers from low performance and...
One possibility to partially satisfy the ever-increasing energy needs of modern society, without com...
As one of the most popular photoanode materials for photoelectrochemical (PEC) water splitting, hema...
The practical application of hematite (α-Fe<sub>2</sub>O<sub>3</sub>) in solar water splitting is se...
Iron oxide in its crystalline form (hematite, alpha-Fe2O3) is an interesting candidate as a photoano...
Hydrogen production from solar and photoelectrochemical water splitting based on modified nanostruct...
In this paper, we report a novel strategy for surface treatment of hematite nanorods for efficient p...
One possibility to partially satisfy the ever-increasing energy needs of modern society, without com...
In this paper, we report a novel strategy for surface treatment of hematite nanorods for efficient p...
The alpha phase of hematite (α-Fe2O3) is one of the most promising catalysts for photoelectrochemica...
AbstractDue to the band gap of hematite (α-Fe2O3, Eg = 2.1 eV) in visible light region, it was regar...
A new strategy for surface treatment of hematite nanoplates for efficient photoelectrochemical (PEC)...
The recent momentum in energy research has simplified converting solar to electrical energy through ...
The recent momentum in energy research has simplified converting solar to electrical energy through ...
The recent momentum in energy research has simplified converting solar to electrical energy through ...
Photo-electrochemical (PEC) water splitting of hematite photoanodes suffers from low performance and...
One possibility to partially satisfy the ever-increasing energy needs of modern society, without com...
As one of the most popular photoanode materials for photoelectrochemical (PEC) water splitting, hema...
The practical application of hematite (α-Fe<sub>2</sub>O<sub>3</sub>) in solar water splitting is se...
Iron oxide in its crystalline form (hematite, alpha-Fe2O3) is an interesting candidate as a photoano...
Hydrogen production from solar and photoelectrochemical water splitting based on modified nanostruct...
In this paper, we report a novel strategy for surface treatment of hematite nanorods for efficient p...
One possibility to partially satisfy the ever-increasing energy needs of modern society, without com...
In this paper, we report a novel strategy for surface treatment of hematite nanorods for efficient p...
The alpha phase of hematite (α-Fe2O3) is one of the most promising catalysts for photoelectrochemica...
AbstractDue to the band gap of hematite (α-Fe2O3, Eg = 2.1 eV) in visible light region, it was regar...