Formation of single-phase multicomponent zirconate with colossal atomic radius difference via reactive flash sintering

Ziting Niu, Qiankun Wang, Rongchang Jiang, Jinglong Qiao, Siyuan Dong, Shengjie Liu, Ke Ren*, Yiguang Wang

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

2 Citations (Scopus)

Abstract

In this study, multicomponent rare-earth zirconate ceramics (Sm0.2Eu0.2Tb0.2Dy0.2Lu0.2)2Zr2O7 and (La0.2Eu0.2Gd0.2Yb0.2Y0.2)2Zr2O7 were synthesized via conventional sintering and reactive flash sintering, respectively. Single-phase (Sm0.2Eu0.2Tb0.2Dy0.2Lu0.2)2Zr2O7 ceramics, with the defect fluorite structure, were successfully obtained via conventional sintering and reactive flash sintering, while secondary phase segregation and precipitation were observed only in conventionally-sintered (La0.2Eu0.2Gd0.2Yb0.2Y0.2)2Zr2O7 ceramics. This study proposes that the critical electric field of reactive flash sintering introduces defects to soften the lattice, which not only improves the mass transportation, but also relieves the lattice stress induced by the atomic radius difference, resulting in the single-phase defect fluorite structure of (La0.2Eu0.2Gd0.2Yb0.2Y0.2)2Zr2O7. Thus, reactive flash sintering is an efficient route for synthesizing and developing novel multicomponent oxides that cannot be synthesized via conventional sintering due to pronounced lattice stress.

Original languageEnglish
Pages (from-to)6622-6627
Number of pages6
JournalJournal of the European Ceramic Society
Volume43
Issue number14
DOIs
Publication statusPublished - Nov 2023

Keywords

  • Atomic radius difference
  • Multicomponent rare-earth zirconates
  • Oxygen vacancies
  • Reactive flash sintering

Fingerprint

Dive into the research topics of 'Formation of single-phase multicomponent zirconate with colossal atomic radius difference via reactive flash sintering'. Together they form a unique fingerprint.

Cite this