Mixed oxide ion-proton conductivity and the ionic migration mechanism in isolated tetrahedral LaVO by acceptor doping

Solid-state oxide ion and proton conductors are garnering significant attention due to their high ionic conductivity and potential applications in a range of electrochemical devices, including solid oxide fuel cells and gas sensors. In this study, we report the influence of partial substitution of L...

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Veröffentlicht in:Inorganic chemistry frontiers 2024-08, Vol.11 (16), p.514-525
Hauptverfasser: Geng, Xinyue, Hang, Gaoqing, Fernández-Carrión, Alberto J, Ming, Xing, Deng, Sihao, He, Lunhua, Kuang, Xiaojun, Yang, Xiaoyan
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Zusammenfassung:Solid-state oxide ion and proton conductors are garnering significant attention due to their high ionic conductivity and potential applications in a range of electrochemical devices, including solid oxide fuel cells and gas sensors. In this study, we report the influence of partial substitution of La 3+ in isolated tetrahedral LaVO 4 ceramics with 0.01 mol of alkaline-earth metals Ca 2+ , Sr 2+ and Ba 2+ on the phase stability and electrical properties. It was found that acceptor doping effectively enhances mixed oxide ion and proton conductivities, with Sr 2+ substitution yielding the highest conductivity, achieving ∼10 −3 S cm −1 at 900 °C under a wet O 2 atmosphere. DFT calculations and ab initio molecular dynamics simulations revealed that protons preferentially form hydrogen bonds with the lattice oxygen near the dopants and migrate through a continuous process of hopping and rotation between inter- and intra-tetrahedral VO 4 groups. Additionally, the existence of oxygen vacancies facilitates the formation of V 2 O 7 dimers through sharing corners with adjacent isolated VO 4 tetrahedra, enabling ion exchange through a synergistic mechanism involving V 2 O 7 dimer breaking and reforming. This research highlights the critical role of the deformation and rotational flexibility of isolated tetrahedral units in facilitating oxide ion and proton transport, underscoring the potential for developing mixed oxide ion and proton conductors in oxygen vacancy-deficient oxides with tetrahedral-based structures. Mixed oxide ion-proton conduction and the cooperative ionic migration mechanism in isolated tetrahedral LaVO 4 by acceptor doping strategies.
ISSN:2052-1553
DOI:10.1039/d4qi00870g