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Variable temperature in situ neutron powder diffraction and conductivity studies of undoped HoNbO4 and HoTaO4

dc.contributor.authorMullens, BGen_AU
dc.contributor.authorSaura-Múzquiz, Men_AU
dc.contributor.authorCordaro, Gen_AU
dc.contributor.authorMarlton, FPen_AU
dc.contributor.authorMaynard-Casely, HEen_AU
dc.contributor.authorZhang, ZMen_AU
dc.contributor.authorBaldinozzi, Gen_AU
dc.contributor.authorKennedy, BJen_AU
dc.date.accessioned2026-10-07T23:13:45Zen_AU
dc.date.issued2024-05-06en_AU
dc.date.statistics2026-04-15en_AU
dc.description.abstractNeutron powder diffraction data has been used to quantify the monoclinic (space group I2/a) to tetragonal (I41/a) phase transition that occurs at 775 °C in HoNbO4 and 1300 °C in HoTaO4. In both cases, deviation from second-order behavior is evident. The LnTaO4 (Ln = Tb–Er) family of oxides has the potential to adopt one of monoclinic, I2/a or P2/c, structures depending on the synthesis conditions. The monoclinic P2/c polymorph of HoTaO4 undergoes an irreversible first-order phase transition to the high-temperature I41/a scheelite-type structure upon heating, with the monoclinic I2/a phase recovered upon cooling. This is the first direct evidence of this irreversible phase transition and implies a maximum heating temperature to synthesize the P2/c phase for potential ionic conductivity applications. Heating a green powder mixture of Ho2O3 + Ta2O5 revealed a complex series of phase transformations, including the observation of a weberite-type Ho3TaO7 intermediate between 1200 and 1390 °C that was not observed upon cooling. Coupled with electrochemical impedance spectroscopy measurements, this diffraction data provides a structural model that explains the higher mobility of charge carriers in LnTaO4 materials that can be used to identify dopants and improve their ionic conductivity and applicability. Undoped HoNbO4 and HoTaO4 are poor conductors, and the activation energy of tetragonal HoNbO4 is greater than that of the monoclinic polymorphs. Oxygen ion and proton conductivities of the undoped structures occur via interstitial oxygen sites (∼10–6 S cm–1 at 800 °C), providing a potential avenue to improve their application in practical devices such as solid oxide fuel cells. © 2024 American Chemical Society.en_AU
dc.description.sponsorshipThe authors acknowledge the support of the Australian Research Council for this work, which was facilitated by access to Sydney Analytical, a core research facility at the University of Sydney, and was, in part, undertaken at the Australian Center for Neutron Scattering (P9760). Bryce G. Mullens thanks the Australian Institute for Nuclear Science and Engineering for a PGRA and SAAFE scholarship. M.S.-M. gratefully acknowledges the financial support from Comunidad de Madrid, Spain, through an “Atracción de Talento Investigador” fellowship (2020-T2/IND-20581).en_AU
dc.identifier.citationMullens, B. G., Saura-Múzquiz, M., Cordaro, G., Marlton, F. P., Maynard-Casely, H. E., Zhang, Z., Baldinozzi, G., & Kennedy, B. J. (2024). Variable temperature in situ neutron powder diffraction and conductivity studies of undoped HoNbO4 and HoTaO4. Chemistry of Materials, 36(10), 5002–5016. doi:10.1021/acs.chemmater.3c03054en_AU
dc.identifier.issn0897-4756en_AU
dc.identifier.issn1520-5002en_AU
dc.identifier.issue10en_AU
dc.identifier.journaltitleChemistry of Materialsen_AU
dc.identifier.pagination5002-5016en_AU
dc.identifier.urihttps://doi.org/10.1021/acs.chemmater.3c03054en_AU
dc.identifier.urihttps://apo.ansto.gov.au/handle/10238/17397en_AU
dc.identifier.volume36en_AU
dc.languageEnglishen_AU
dc.language.isoenen_AU
dc.publisherAmerican Chemical Society (ACS)en_AU
dc.subjectHolmiumen_AU
dc.subjectNiobiumen_AU
dc.subjectThermal conductivityen_AU
dc.subjectTemperature rangeen_AU
dc.subjectNeutron diffractionen_AU
dc.subjectChemistryen_AU
dc.subjectMaterialsen_AU
dc.subjectSolid oxide fuel cellsen_AU
dc.subjectGranular materialsen_AU
dc.titleVariable temperature in situ neutron powder diffraction and conductivity studies of undoped HoNbO4 and HoTaO4en_AU
dc.typeJournal Articleen_AU

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