Iron precipitated onto ceria-zirconia nanoparticle mixtures for the production of hydrogen via two-step thermochemical water splitting

2018 
Abstract Several novel materials were synthesized by precipitating iron oxide (using the previously optimized 10% Fe loading by weight) onto mixtures of nanoparticle zirconia and ceria to investigate the effects of adding CeO 2 to FeO x /ZrO 2 materials in the thermochemical water splitting reaction. At water splitting temperatures of 1000 °C (after thermal reduction at 1450 °C), the stability of the CeO 2 -containing materials was lower than for the FeO x /ZrO 2 material, and there was no advantage to adding CeO 2 to the FeO x /ZrO 2 material. However, when operating at a water splitting (WS) temperature of 1200 °C, the stability increased and the hydrogen production was significantly higher over most materials compared with a water splitting temperature of 1000 °C. At a WS temperature of 1200 °C the FeO x /Zr 75 Ce 25 O 2 (75% Zr 75 O 2 and 25% CeO 2 by weight) and FeO x /Zr 50 Ce 50 O 2 materials performed slightly better than the FeO x /ZrO 2 material, and X-ray photoelectron spectroscopy data revealed that the surface concertation of iron is less important compared with water splitting at 1000 °C. The temperature programmed reduction data indicated that the FeO x -CeO 2 interactions were weaker compared with FeO x -ZrO 2 interactions, since the FeO x reduction occurred at lower temperatures for the CeO 2 -containing materials. The weaker interactions can explain why the stability was lower for the materials containing CeO 2 (sintering of FeO x was likely more pronounced) The X-ray diffraction data revealed that ZrO 2 -CeO 2 solid solutions formed after activation at 1450 °C and lattice volume calculations indicated that iron did incorporate into the ZrO 2 -CeO 2 matrices. More incorporation was observed after water-splitting at 1200 °C compared with a lower temperature (1000 °C), and likely explains why the materials were more stable during water-splitting at 1200 °C.
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