Litcius/Paper detail

A‐site acceptor‐doping strategy to enhance oxygen transport in sodium–bismuth–titanate perovskite

Duke P.C. Shih, Ainara Aguadero, Stephen J. Skinner

2022Journal of the American Ceramic Society13 citationsDOIOpen Access PDF

Abstract

Abstract Sodium–bismuth–titanate (NBT) has recently been shown to contain high levels of oxide ion conductivity. Here we report the effect of A‐site monovalent ions, M + = K + and Li + , on the electrical conductivity of NBT. The partial replacement of Bi 3+ with monovalent ions improved the ionic conductivity by over one order of magnitude without an apparent change of the conduction mechanism, which is attributed to an increase in the oxygen vacancy concentration based on an acceptor‐doping approach. The 18 O tracer‐diffusion coefficient ( D* ) determined by the isotope exchange depth profile method in combination with secondary ion mass spectrometry confirmed that oxygen ions are the main charge carriers in the system. Among these acceptor‐doped samples, 4% Li doping provides the highest total conductivity, leading to a further discussion of doping strategies for NBT‐based materials to enhance the electrical behavior, is discussed. Comparisons with other oxide‐ion conductors and an oxygen‐vacancy diffusivity limit model in perovskite lattice suggested that the doped NBT‐based materials might already have achieved the optimization of the ionic conductivity.

Topics & Concepts

Ionic conductivityDopingConductivityAcceptorVacancy defectPerovskite (structure)Inorganic chemistryMaterials scienceBismuthOxideIonAnalytical Chemistry (journal)ChemistryPhysical chemistryElectrodeElectrolyteCrystallographyCondensed matter physicsOrganic chemistryChromatographyOptoelectronicsPhysicsMetallurgyAdvancements in Solid Oxide Fuel CellsFerroelectric and Piezoelectric MaterialsThermal Expansion and Ionic Conductivity