This paper reports the thermodynamic analysis of solar H2 production via two-step thermochemical iron oxide–iron sulfate (IO–IS) water splitting cycle. The first step belongs to the exothermic oxidation of FeO via SO2 and H2O producing FeSO4 and H2 and second step corresponds to the endothermic reduction of FeSO4 into FeO, SO2, and O2. The products, FeO and SO2 can be recycled to step 1 and hence, reutilized for the production of H2 via water splitting reaction. Thermodynamic equilibrium compositions and variations in enthalpy, entropy and Gibbs free energy of the thermal reduction and water splitting reactions were computed as a function of reaction temperatures. Furthermore, the effect of molar flow rate of inert Ar (n˙Ar) on thermal redu...
International audienceThis paper presents a process analysis of ZnO/Zn, Fe3O4/FeO and Fe2O3/Fe3O4 th...
The sulfur-iodine (S-I) thermochemical water splitting cycle is one of the most studied cycles for h...
A two-step thermo-chemical cycle for solar production of hydrogen from water has been developed and ...
This paper reports the thermodynamic analysis of solar H2 production via two-step thermochemical iro...
This paper reports the thermodynamic analysis of solar H2 production via two-step thermochemical Str...
In this paper computational thermodynamic modeling of solar syngas production via ferrite based (Fe3...
This article reports the thermodynamic efficiency analysis of the strontium oxide strontium sulfate ...
The computational thermodynamic analysis of a samarium oxide-based two-step solar thermochemical wat...
In this paper computational thermodynamics modeling of the solar H2 production via twostep thermoche...
Production of H2 via water splitting reaction driven by concentrated solar power is one of the promi...
This paper reports a thermodynamic comparison between the samarium and erbium oxide based solar ther...
There are many studies related on the SnO2/SnO based solar thermochemical water splitting cycle, how...
In this paper, a detailed thermodynamic equilibrium and efficiency analysis of the MnSO4/MnO water s...
Thermochemical water splitting cycles, where the H2O molecule is converted into hydrogen and oxygen ...
In this paper computational thermodynamics modeling of the solar H2 production via twostep thermoche...
International audienceThis paper presents a process analysis of ZnO/Zn, Fe3O4/FeO and Fe2O3/Fe3O4 th...
The sulfur-iodine (S-I) thermochemical water splitting cycle is one of the most studied cycles for h...
A two-step thermo-chemical cycle for solar production of hydrogen from water has been developed and ...
This paper reports the thermodynamic analysis of solar H2 production via two-step thermochemical iro...
This paper reports the thermodynamic analysis of solar H2 production via two-step thermochemical Str...
In this paper computational thermodynamic modeling of solar syngas production via ferrite based (Fe3...
This article reports the thermodynamic efficiency analysis of the strontium oxide strontium sulfate ...
The computational thermodynamic analysis of a samarium oxide-based two-step solar thermochemical wat...
In this paper computational thermodynamics modeling of the solar H2 production via twostep thermoche...
Production of H2 via water splitting reaction driven by concentrated solar power is one of the promi...
This paper reports a thermodynamic comparison between the samarium and erbium oxide based solar ther...
There are many studies related on the SnO2/SnO based solar thermochemical water splitting cycle, how...
In this paper, a detailed thermodynamic equilibrium and efficiency analysis of the MnSO4/MnO water s...
Thermochemical water splitting cycles, where the H2O molecule is converted into hydrogen and oxygen ...
In this paper computational thermodynamics modeling of the solar H2 production via twostep thermoche...
International audienceThis paper presents a process analysis of ZnO/Zn, Fe3O4/FeO and Fe2O3/Fe3O4 th...
The sulfur-iodine (S-I) thermochemical water splitting cycle is one of the most studied cycles for h...
A two-step thermo-chemical cycle for solar production of hydrogen from water has been developed and ...