International audienceThe perfomance of hematite and Ti-substituted hematite nanorods as photoanodes for solar water splitting was quantitavely evaluated from photoelectrochemical point of view. The nanostructure, morphology and chemical / electronic structure were characterized using various complementary methods, including X-ray diffraction, electron microscopy, X-ray photoelectron spectroscopy and scanning transmission X-ray microscopy. The presence of both reductive and oxidative surface states was evidenced and their impact on the photoelectrochemical efficiency was characterized. We show that both electronic conduction enhancement provided by the Ti substitution and charge transfer promoted by oxidative surface states improve solar wa...
As one of the most popular photoanode materials for photoelectrochemical (PEC) water splitting, hema...
In this paper, we report a novel strategy for surface treatment of hematite nanorods for efficient p...
Surface states are inherently involved with photoelectrochemical (PEC) solar fuel production; some o...
International audienceThe perfomance of hematite and Ti-substituted hematite nanorods as photoanodes...
Designing an efficient photoanode is of great importance for photoassisted solar water splitting. He...
AbstractDue to the band gap of hematite (α-Fe2O3, Eg = 2.1 eV) in visible light region, it was regar...
Solar water splitting is an environmentally friendly reaction of producing hydrogen gas. Since Honda...
Functional nanoscale interfaces that promote the transport of photoexcited charge carriers are funda...
Solar assisted water splitting in a PEC is an attractive concept to store solar energy as hydrogen f...
An Ar atmospheric treatment is rationally used to etch and activate hematite nanoflakes (NFs) as pho...
DoctorHydrogen is very promising fuel that may become one of the important energy carrier to meet ou...
Solar water splitting is a promising method for producing renewable fuels. Thermodynamically, the ov...
A unique nanostructured rod-like morphology of hematite (a-Fe2O3), designed with no grain boundaries...
Ultrathin TiO<sub>2</sub> is deposited on conventional hydrothermal grown hematite nanorod arrays by...
AbstractHematite is recognized as an excellent photocatalyst for photoelectrochemical photoanodes fo...
As one of the most popular photoanode materials for photoelectrochemical (PEC) water splitting, hema...
In this paper, we report a novel strategy for surface treatment of hematite nanorods for efficient p...
Surface states are inherently involved with photoelectrochemical (PEC) solar fuel production; some o...
International audienceThe perfomance of hematite and Ti-substituted hematite nanorods as photoanodes...
Designing an efficient photoanode is of great importance for photoassisted solar water splitting. He...
AbstractDue to the band gap of hematite (α-Fe2O3, Eg = 2.1 eV) in visible light region, it was regar...
Solar water splitting is an environmentally friendly reaction of producing hydrogen gas. Since Honda...
Functional nanoscale interfaces that promote the transport of photoexcited charge carriers are funda...
Solar assisted water splitting in a PEC is an attractive concept to store solar energy as hydrogen f...
An Ar atmospheric treatment is rationally used to etch and activate hematite nanoflakes (NFs) as pho...
DoctorHydrogen is very promising fuel that may become one of the important energy carrier to meet ou...
Solar water splitting is a promising method for producing renewable fuels. Thermodynamically, the ov...
A unique nanostructured rod-like morphology of hematite (a-Fe2O3), designed with no grain boundaries...
Ultrathin TiO<sub>2</sub> is deposited on conventional hydrothermal grown hematite nanorod arrays by...
AbstractHematite is recognized as an excellent photocatalyst for photoelectrochemical photoanodes fo...
As one of the most popular photoanode materials for photoelectrochemical (PEC) water splitting, hema...
In this paper, we report a novel strategy for surface treatment of hematite nanorods for efficient p...
Surface states are inherently involved with photoelectrochemical (PEC) solar fuel production; some o...