The dissociation of gaseous hydrogen sulphide (H2S) into its components is an energy intensive process. The process is studied in this paper with respect to the thermodynamic limits. The band gap of the catalyst and the nature of the solar radiation limit the proportion of incoming radiation that may be used for the reaction. The intensity of the incoming radiation and the reactor temperature are varied and the performance is studied. The exergy efficiency is determined as a function of the quantum efficiency of the photochemical process, and the catalyst band gap. It is shown that an optimum case exergy efficiency of up to 28% can be achieved for the process. With the current status of technology, an exergy efficiency value in the region o...
One of the main limitations of existing solar thermochemical water-splitting cycles (WSC) are that t...
The sulfur-iodine (S-I) thermochemical water splitting cycle is one of the most studied cycles for h...
The hybrid sulfur (HyS) cycle, coupled with concentrated solar power, is a high-potential candidate ...
The production of hydrogen from hydrogen sulphide has a twofold goal as it can be seen as a challeng...
Solar-powered thermochemical water splitting cycles (TWSC) can potentially reach overall efficiencie...
Hydrogen is currently being used in many industries, from chemical and refining to metallurgical, gl...
Hydrogen, being an environmentally friendly energy carrier is considered a future solution of the cu...
This paper reports the thermodynamic analysis of solar H2 production via two-step thermochemical iro...
Solar energy underlies significant diurnal and seasonal fluctuations and hence requires qualified st...
The sulfur-iodine cycle is one of the most promising thermochemical cycles for hydrogen production. ...
Decomposition of sulphuric acid is a key step of sulphur based thermochemical cycles for hydrogen pr...
The sulfur-iodine cycle is one of the most promising thermochemical cycles for hydrogen production. ...
Hydrogen production from solar-driven thermochemical water splitting cycles (TCWSCs) provides an app...
WOS: 000415394200048Recent studies show that thermochemical cycles has a great potential for green h...
Hydrogen sulfide, H2S, is a byproduct of oil refinement and comprises a significant portion of natur...
One of the main limitations of existing solar thermochemical water-splitting cycles (WSC) are that t...
The sulfur-iodine (S-I) thermochemical water splitting cycle is one of the most studied cycles for h...
The hybrid sulfur (HyS) cycle, coupled with concentrated solar power, is a high-potential candidate ...
The production of hydrogen from hydrogen sulphide has a twofold goal as it can be seen as a challeng...
Solar-powered thermochemical water splitting cycles (TWSC) can potentially reach overall efficiencie...
Hydrogen is currently being used in many industries, from chemical and refining to metallurgical, gl...
Hydrogen, being an environmentally friendly energy carrier is considered a future solution of the cu...
This paper reports the thermodynamic analysis of solar H2 production via two-step thermochemical iro...
Solar energy underlies significant diurnal and seasonal fluctuations and hence requires qualified st...
The sulfur-iodine cycle is one of the most promising thermochemical cycles for hydrogen production. ...
Decomposition of sulphuric acid is a key step of sulphur based thermochemical cycles for hydrogen pr...
The sulfur-iodine cycle is one of the most promising thermochemical cycles for hydrogen production. ...
Hydrogen production from solar-driven thermochemical water splitting cycles (TCWSCs) provides an app...
WOS: 000415394200048Recent studies show that thermochemical cycles has a great potential for green h...
Hydrogen sulfide, H2S, is a byproduct of oil refinement and comprises a significant portion of natur...
One of the main limitations of existing solar thermochemical water-splitting cycles (WSC) are that t...
The sulfur-iodine (S-I) thermochemical water splitting cycle is one of the most studied cycles for h...
The hybrid sulfur (HyS) cycle, coupled with concentrated solar power, is a high-potential candidate ...