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Phase segregation and miscibility of TiO x nanocomposites in Gd-doped ceria solid electrolyte material.

Authors :
Li J
Routh PK
Li Y
Plonka A
Makagon E
Lubomirsky I
Frenkel A
Source :
Journal of synchrotron radiation [J Synchrotron Radiat] 2023 Jul 01; Vol. 30 (Pt 4), pp. 758-765. Date of Electronic Publication: 2023 May 26.
Publication Year :
2023

Abstract

Electro-chemo-mechanical (ECM) coupling refers to mechanical deformation due to electrochemically driven compositional change in a solid. An ECM actuator producing micrometre-size displacements and long-term stability at room temperature was recently reported, comprising a 20 mol% Gd-doped ceria (20GDC), a solid electrolyte membrane, placed between two working bodies made of TiO <subscript>x</subscript> /20GDC (Ti-GDC) nanocomposites with Ti concentration of 38 mol%. The volumetric changes originating from oxidation or reduction in the local TiO <subscript>x</subscript> units are hypothesized to be the origin of mechanical deformation in the ECM actuator. Studying the Ti concentration-dependent structural changes in the Ti-GDC nanocomposites is therefore required for (i) understanding the mechanism of dimensional changes in the ECM actuator and (ii) maximizing the ECM response. Here, the systematic investigation of the local structure of the Ti and Ce ions in Ti-GDC over a broad range of Ti concentrations using synchrotron X-ray absorption spectroscopy and X-ray diffraction is reported. The main finding is that, depending on the Ti concentration, Ti atoms either form a cerium titanate or segregate into a TiO <subscript>2</subscript> anatase-like phase. The transition region between these two regimes with Ti(IV) concentration between 19% and 57% contained strongly disordered TiO <subscript>x</subscript> units dispersed in 20GDC containing Ce(III) and Ce(IV) and hence rich with oxygen vacancies. As a result, this transition region is proposed to be the most advantageous for developing ECM-active materials.<br /> (open access.)

Details

Language :
English
ISSN :
1600-5775
Volume :
30
Issue :
Pt 4
Database :
MEDLINE
Journal :
Journal of synchrotron radiation
Publication Type :
Academic Journal
Accession number :
37233734
Full Text :
https://doi.org/10.1107/S1600577523003636