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April 13, 2026Scientific Reports0 citationsOpen Access

Strain release of substoichiometric (Zr, Y) O₂-ₗ phases formed by electrochemical reduction in single crystalline YSZ

CRChristian RodenbücherDWDominik WranaBJBenedykt R. Jany

Key Points

  • This research aims to explore the formation of substoichiometric (Zr,Y)O phases through electrochemical reduction and their resulting strain effects.
  • Electrochemical reduction of cubic 9.5YSZ using DC current and platinum electrodes.
  • STEM investigations and EDX for phase identification and composition measurement.
  • Observation of microstructural features on single crystal surfaces.
  • Identification of (Zr,Y)$_{8.6}$O and (Zr,Y)$_2$O phases formed near the cathode.
  • Significant volume contraction observed in the (Zr,Y)$_{8.6}$O phase compared to unreduced YSZ.
  • Strain relaxation possibly explained by misfit dislocations observed at phase interfaces.

Abstract

The formation of substoichiometric mixed zirconium-yttrium oxides by electroreduction of cubic 9. 5YSZ is investigated. A strongly oxygen depleted phase with the stoichiometry (Zr, Y) ₈. ₆ O is observed, forming belt-shaped features below the sample surface in the heavily reduced region close to the cathode. It is embedded in another oxygen depleted phase with the stoichiometry (Zr, Y) ₂ O. The electroreduction is performed by drawing a DC current through a single crystal with circular platinum electrodes. The new phases, which are possibly metastable and not yet reported in literature, are identified by STEM investigations and EDX, which is used to measure the composition. The found composition indicates Zr and Y with an oxidation state of +I, respectively, between +I and 0. The (Zr, Y) ₈. ₆ O phase has a significant distortion of the original cubic symmetry. The (Zr, Y) ₂ O phase exhibits a slight, the (Zr, Y) ₈. ₆ O phase a strong decrease of the molar volume compared to unreduced YSZ. A chequerboard-like structure on the surface of the single crystal can be most probably explained by strain relaxation due to dislocation gliding. Misfit dislocations can be found in the interface between the substoichiometric phases. The induced strain due to the volume contraction may also be responsible for the known deterioration of the mechanical properties after reduction.

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Cite This Study

Rodenbücher et al. (2026) studied this question.

synapsesocial.com/papers/69dc88303afacbeac03ea261https://doi.org/10.1038/s41598-026-45838-x
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