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Related Concept Videos

Imperfections in Crystal Structure: Stoichiometric Point Defects01:26

Imperfections in Crystal Structure: Stoichiometric Point Defects

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Schottky defects arise when some lattice points in a crystal, such as those in NaCl, remain unoccupied, creating lattice vacancies without disturbing the overall electrical neutrality of the crystal. This defect is common in ionic crystals where the positive and negative ions are similar in size, as seen in sodium chloride and cesium chloride. The presence of Schottky defects enables the crystal to conduct electricity to a small extent through an ionic mechanism. Electric fields cause nearby...
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Imperfections in Crystal Structure: Non-Stoichiometric Defects01:29

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Non-stoichiometric defects refer to a type of defect in the crystal structure of a compound where the ratio of its constituent elements deviates from the ideal stoichiometric ratio. There are two main types of non-stoichiometric defects: metal excess defects and metal deficiency defects.Metal excess defects occur when there is a slight surplus of metal ions than what is required by the stoichiometric ratio of the compound. For example, heating a sodium chloride crystal in sodium vapor results...
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Related Experiment Video

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High Temperature Fabrication of Nanostructured Yttria-Stabilized-Zirconia YSZ Scaffolds by In Situ Carbon Templating Xerogels
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Structural and defect chemistry guidelines for Sr(V,Nb)O3-based SOFC anode materials.

J Macías1, A A Yaremchenko, D P Fagg

  • 1CICECO - Aveiro Institute of Materials, Department of Materials and Ceramic Engineering, University of Aveiro, 3810-193 Aveiro, Portugal. ayaremchenko@ua.pt.

Physical Chemistry Chemical Physics : PCCP
|March 27, 2015
PubMed
Summary

Niobium substitution in strontium vanadate perovskites enhances stability for solid oxide fuel cell anodes. These materials show improved redox tolerance and reduced thermal expansion, crucial for SOFC applications.

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Area of Science:

  • Materials Science
  • Electrochemistry
  • Solid Oxide Fuel Cells (SOFCs)

Background:

  • Strontium vanadate (SrVO3-δ) is a promising material for SOFC anodes due to its electrical conductivity.
  • However, its application is limited by redox instability and high thermal expansion.
  • Niobium substitution is explored to improve the performance and stability of SrVO3-δ.

Purpose of the Study:

  • To investigate the structural and defect chemistry of Nb-substituted SrVO3-δ for SOFC anode applications.
  • To evaluate the impact of niobium substitution on redox tolerance, thermochemical compatibility, and electrical conductivity.
  • To understand how oxygen stoichiometry changes affect electrocatalytic performance.

Main Methods:

  • Solid-state synthesis of SrV1-xNbxO3-δ ceramics (x = 0-0.30).
  • Sintering at 1773 K in a reducing atmosphere.
  • Characterization using X-ray Diffraction (XRD) and Scanning Electron Microscopy with Energy Dispersive Spectroscopy (SEM/EDS).

Main Results:

  • A single-phase cubic perovskite structure was achieved up to x ≈ 0.25.
  • Electrical conductivity remained metallic-like and high (>100 S cm⁻¹ for x ≤ 0.20), despite a slight decrease with Nb substitution.
  • Niobium substitution improved phase stability, shifted the upper p(O2) limit for stability, and significantly reduced thermal expansion (from 22.7 × 10⁻⁶ to 13.3 × 10⁻⁶ K⁻¹).

Conclusions:

  • Nb-substituted SrVO3-δ perovskites offer enhanced stability and reduced thermal expansion compared to undoped SrVO3-δ.
  • The materials exhibit sluggish oxidation kinetics, leading to nearly reversible behavior in short-term redox cycles.
  • Structural and defect chemistry insights provide guidelines for optimizing these materials for SOFC anode applications.