Enhanced optical reflectivity and electrical properties in perovskite functional ceramics by inhibiting oxygen vacancy formation

Yang Zhao, Jinpeng Zhu*, Hailong Wang, Zhuang Ma, Lihong Gao, Yanbo Liu, Yang Liu, Yongchun Shu, Jilin He

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

19 Citations (Scopus)

Abstract

Perovskite functional ceramics have attracted considerable interest owing to their promising catalytic, optical and electrical performance. To understand the relationships between oxygen vacancy defects and the properties of perovskite materials through Nb5+ doping, new perovskite composite La0.9Sr0.1Ti0.75Nb0.25O3+δ (LSTN0.25) ceramics are proposed. These are synthesized by Nb2O5-doped La0.9Sr0.1TiO3+δ and exhibit layered perovskite (La, Sr)2(Ti, Nb)2O7 and scheelite LaNbO4. Their microstructure, reflectivity, band structure, and dielectric properties were investigated through experiments and first-principles calculations. The energy calculations and electron paramagnetic resonance signals performed on oxygen vacancy suggested that oxygen vacancy defects are difficult to form and at a lower level in LSTN0.25, which significantly improved the near-infrared reflectivity. The dielectric properties and band structure demonstrated that LSTN0.25 sintered at 1400 °C exhibited higher reflectivity than those of the La0.9Sr0.1TiO3+δ ceramics. These findings shed light on the role of Nb5+ in inhibiting oxygen vacancy formation in perovskite and provide an approach for fabricating novel, full-band, high reflectivity perovskite ceramics through high valence element doping.

Original languageEnglish
Pages (from-to)5549-5558
Number of pages10
JournalCeramics International
Volume47
Issue number4
DOIs
Publication statusPublished - 15 Feb 2021

Keywords

  • Electrical properties
  • First-principle calculation
  • Optical reflectivity
  • Oxygen vacancy defect
  • Perovskite ceramic

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