The kinetic competition between electron–hole recombination and water oxidation is a key consideration for the development of efficient photoanodes for solar driven water splitting. In this study, we employed three complementary techniques, transient absorption spectroscopy (TAS), transient photocurrent spectroscopy (TPC), and electrochemical impedance spectroscopy (EIS), to address this issue for one of the most widely studied photoanode systems: nanostructured hematite thin films. For the first time, we show a quantitative agreement between all three techniques. In particular, all three methods show the presence of a recombination process on the 10 ms to 1 s time scale, with the time scale and yield of this loss process being dependent up...
Hematite is a widely investigated material for applications in solar water oxidation due primarily t...
The spectra and dynamics of photogenerated electrons and holes in excited hematite (α-Fe_(2)O_3) ele...
We study hematite (alpha-Fe2O3) photoelectrodes for water splitting by examining the fate of photoge...
The kinetic competition between electron-hole recombination and water oxidation is a key considerati...
The kinetic competition between electron-hole recombination and water oxidation is a key considerati...
Although the field of solar water splitting is now forty years old, in recent years there has been a...
Transient absorption spectroscopy on subpicosecond to second time scales is used to investigate phot...
Transient absorption spectroscopy on subpicosecond to second time scales is used to investigate phot...
Hematite is currently considered one of the most promising materials for the conversion and storage ...
Hematite is currently considered one of the most promising materials for the conversion and storage ...
Converting solar energy into hydrogen through photoelectrochemical (PEC) water splitting offers a pr...
Hematite (α-Fe2O3) constitutes one of the most promising semiconductor materials for the conversion ...
Hematite (α-Fe2O3) constitutes one of the most promising semiconductor materials for the conversion ...
The effect of the structural and electronic properties of hematite photoanodes on the charge carrier...
The spectra and dynamics of photogenerated electrons and holes in excited hematite (α-Fe_(2)O_3) ele...
Hematite is a widely investigated material for applications in solar water oxidation due primarily t...
The spectra and dynamics of photogenerated electrons and holes in excited hematite (α-Fe_(2)O_3) ele...
We study hematite (alpha-Fe2O3) photoelectrodes for water splitting by examining the fate of photoge...
The kinetic competition between electron-hole recombination and water oxidation is a key considerati...
The kinetic competition between electron-hole recombination and water oxidation is a key considerati...
Although the field of solar water splitting is now forty years old, in recent years there has been a...
Transient absorption spectroscopy on subpicosecond to second time scales is used to investigate phot...
Transient absorption spectroscopy on subpicosecond to second time scales is used to investigate phot...
Hematite is currently considered one of the most promising materials for the conversion and storage ...
Hematite is currently considered one of the most promising materials for the conversion and storage ...
Converting solar energy into hydrogen through photoelectrochemical (PEC) water splitting offers a pr...
Hematite (α-Fe2O3) constitutes one of the most promising semiconductor materials for the conversion ...
Hematite (α-Fe2O3) constitutes one of the most promising semiconductor materials for the conversion ...
The effect of the structural and electronic properties of hematite photoanodes on the charge carrier...
The spectra and dynamics of photogenerated electrons and holes in excited hematite (α-Fe_(2)O_3) ele...
Hematite is a widely investigated material for applications in solar water oxidation due primarily t...
The spectra and dynamics of photogenerated electrons and holes in excited hematite (α-Fe_(2)O_3) ele...
We study hematite (alpha-Fe2O3) photoelectrodes for water splitting by examining the fate of photoge...