Giant onsite electronic entropy enhances the performance of ceria for water splitting.
basic_science · Level V
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- Record sourced from PubMed, PMID 28819153.
- Also identified by DOI 10.1038/s41467-017-00381-2 and PMC identifier 5561097.
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Abstract
Previous studies have shown that a large solid-state entropy of reduction increases the thermodynamic efficiency of metal oxides, such as ceria, for two-step thermochemical water splitting cycles. In this context, the configurational entropy arising from oxygen off-stoichiometry in the oxide, has been the focus of most previous work. Here we report a different source of entropy, the onsite electronic configurational entropy, arising from coupling between orbital and spin angular momenta in lanthanide f orbitals. We find that onsite electronic configurational entropy is sizable in all lanthanides, and reaches a maximum value of ≈4.7 k <sub>B</sub> per oxygen vacancy for Ce<sup>4+</sup>/Ce<sup>3+</sup> reduction. This unique and large positive entropy source in ceria explains its excellent performance for high-temperature catalytic redox reactions such as water splitting. Our calculations also show that terbium dioxide has a high electronic entropy and thus could also be a potential candidate for solar thermochemical reactions.Solid-state entropy of reduction increases the thermodynamic efficiency of ceria for two-step thermochemical water splitting. Here, the authors report a large and different source of entropy, the onsite electronic configurational entropy arising from coupling between orbital and spin angular momenta in f orbitals.
Medical subject headings
- Cerium
- Entropy
- Oxides
- Water