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Iron‐Doped BaMnO<sub>3</sub> for Hybrid Water Splitting and Syngas Generation

59

Citations

33

References

2017

Year

Abstract

A rationalized strategy to optimize transition-metal-oxide-based redox catalysts for water splitting and syngas generation through a hybrid solar-redox process is proposed and validated. Monometallic transition metal oxides do not possess desirable properties for water splitting; however, density functional theory calculations indicate that the redox properties of perovskite-structured BaMn<sub>x</sub> Fe<sub>1-x</sub> O<sub>3-δ</sub> can be varied by changing the B-site cation compositions. Specifically, BaMn<sub>0.5</sub> Fe<sub>0.5</sub> O<sub>3-δ</sub> is projected to be suitable for the hybrid solar-redox process. Experimental studies confirm such predictions, demonstrating 90 % steam-to-hydrogen conversion in water splitting and over 90 % syngas yield in the methane partial-oxidation step after repeated redox cycles. Compared to state-of-the-art solar-thermal water-splitting catalysts, the rationally designed redox catalyst reported is capable of splitting water at a significantly lower temperature and with ten-fold increase in steam-to-hydrogen conversion. Process simulations indicate the potential to operate the hybrid solar-redox process at a higher efficiency than state-of-the-art hydrogen and liquid-fuel production processes with 70 % lower CO<sub>2</sub> emissions for hydrogen production.

References

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