Photoelectrochemical (PEC) splitting of water to make hydrogen is a promising clean-energy technology. The oxygen evolution reaction (OER) largely determines the energy efficiency in PEC water-splitting. Hematite, which is a cheap and sustainable semiconductor material with excellent chemical properties, a favourable band gap (2.1 eV) and composed of earth abundant elements is a suitable model photoanode material for studying OER. To understand the design of energy efficient anodes, it is highly desirable to have mechanistic insight into OER at an atomistic level which can be directly connected to experimentally measured quantities. We present a multiscale computational model of OER which connects the thermodynamics and kinetics of elementa...
Hematite (alpha-Fe2O3) is an extensively investigated semiconductor for photoelectrochemical (PEC) w...
A phenomenological model is proposed for a better understanding of the basic mechanismsof photoelect...
Water oxidation is the key kinetic bottleneck of photoelectrochemical devices for fuel synthesis. De...
Light-driven water-splitting (photoelectrolysis) at semiconductor electrodes continues to excite int...
The oxygen evolution reaction (OER) plays a crucial role in (photo)electrochemical devices that use ...
Photoelectrochemical water splitting is a promising source of clean, renewable fuel in the form of h...
This review summarizes recent developments, challenges, and strategies in the field of modeling and ...
A phenomenological model is proposed for a better understanding of the basic mechanisms of photoelec...
Water oxidation is the key kinetic bottleneck of photoelectrochemical devices for fuel synthesis. De...
The sensitivity of the surface orientation on photoelectrochemical water oxidation has recently been...
Water oxidation is the key kinetic bottleneck of photoelectrochemical devices for fuel synthesis. De...
Water oxidation is the key kinetic bottleneck of photoelectrochemical devices for fuel synthesis. De...
The oxygen evolution reaction (OER) is thought to occur via a four-step mechanism with *O, *OH, and ...
The oxygen evolution reaction (OER) has been identified as one of the performance-limiting processes...
Hematite (alpha-Fe2O3) is an extensively investigated semiconductor for photoelectrochemical (PEC) w...
Hematite (alpha-Fe2O3) is an extensively investigated semiconductor for photoelectrochemical (PEC) w...
A phenomenological model is proposed for a better understanding of the basic mechanismsof photoelect...
Water oxidation is the key kinetic bottleneck of photoelectrochemical devices for fuel synthesis. De...
Light-driven water-splitting (photoelectrolysis) at semiconductor electrodes continues to excite int...
The oxygen evolution reaction (OER) plays a crucial role in (photo)electrochemical devices that use ...
Photoelectrochemical water splitting is a promising source of clean, renewable fuel in the form of h...
This review summarizes recent developments, challenges, and strategies in the field of modeling and ...
A phenomenological model is proposed for a better understanding of the basic mechanisms of photoelec...
Water oxidation is the key kinetic bottleneck of photoelectrochemical devices for fuel synthesis. De...
The sensitivity of the surface orientation on photoelectrochemical water oxidation has recently been...
Water oxidation is the key kinetic bottleneck of photoelectrochemical devices for fuel synthesis. De...
Water oxidation is the key kinetic bottleneck of photoelectrochemical devices for fuel synthesis. De...
The oxygen evolution reaction (OER) is thought to occur via a four-step mechanism with *O, *OH, and ...
The oxygen evolution reaction (OER) has been identified as one of the performance-limiting processes...
Hematite (alpha-Fe2O3) is an extensively investigated semiconductor for photoelectrochemical (PEC) w...
Hematite (alpha-Fe2O3) is an extensively investigated semiconductor for photoelectrochemical (PEC) w...
A phenomenological model is proposed for a better understanding of the basic mechanismsof photoelect...
Water oxidation is the key kinetic bottleneck of photoelectrochemical devices for fuel synthesis. De...