Ba<sub>7</sub>Nb<sub>4</sub>MoO<sub>20</sub>: A Proton or Oxide Ion Conductor?
Ba7Nb4MoO20: проводник протонов или оксид-ионов?
2025-07-01
SCID: 54.1/dyfcmmjj
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Ba7Nb4MoO20Nb2O9H unitshydration effectoxide ion conductorproton conduction
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Abstract (AI)
Ba7Nb4MoO20 is a recently emerging fast oxide ion conductor, attracting increasing attention. It was reported to also show proton conduction in a humid atmosphere, which is, however, opposite to the results in this work. Theoretical calculations indicate that protons can hardly move, being stabilized in the perovskite blocks or trapped in the palmierite layers, which is in line with the experimental evidence of almost no H2O/D2O isotope effect and a negligibly small transport number of protons by EMF measurements up to 800 °C. It is thereby clear that Ba7Nb4MoO20 is almost a pure oxide ion conductor even though it can be hydrated upon exposure to moisture. The hydration in fact stabilizes interstitial oxide ions (O5 site) in the palmierite layers by forming Nb2O9H units, leading to reduced bulk conductivity in the pristine and slightly Nb-rich compositions at <400 °C. However, by heating up over 400 °C, the bulk conductivity in the wet atmosphere surpasses that in the dry one, benefitting from an injection of protons into the perovskite blocks to release free O5 ions for oxide ion conduction, indicating that hydration may provide extra oxide ions to enhance the oxide ion conduction.
Key Findings
1
Above 400 °C in wet atmosphere, bulk conductivity exceeds that in dry atmosphere because proton injection into perovskite blocks releases free O5 ions, so hydration can enhance oxide ion conduction at high temperature.
2
Ba7Nb4MoO20 is predominantly an oxide ion conductor, not a proton conductor, despite prior reports of proton conduction.
3
Experimental evidence: almost no H2O/D2O isotope effect and a negligibly small proton transport number by EMF measurements up to 800 °C.
4
Hydration stabilizes interstitial oxide ions (O5 site) in palmierite layers by forming Nb2O9H units, which reduces bulk conductivity in pristine and slightly Nb-rich compositions below 400 °C.
5
Theoretical calculations show protons are strongly stabilized (immobile) in perovskite blocks or trapped in palmierite layers, preventing significant proton mobility.
Research Object
Ba7Nb4MoO20 material (crystalline oxide)
Research Subject
Whether Ba7Nb4MoO20 conducts protons versus oxide ions, including mechanisms of proton stabilization/trapping, isotope effect, proton transport number, hydration effects (formation of Nb2O9H, O5 interstitials), and temperature-dependent bulk oxide-ion conductivity in wet vs dry atmospheres
Publication Details
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2025-07-01
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