Synthesis of Ceramics from Solutions: Functionally Graded Composites, NanoComposites and Single Crystal Thin Films. Lattice Mismatch Accommodation in Perovskite Films on Perovskite Substrates.

Abstract

Cubic perovskite films with different compositions were grown on perovskite substrates to investigate the influence of a large lattice mismatch on growth phenomena via the chemical solution deposition method, using toluene solutions of different 2-ethylhexanoates and neodecanoates. The films were pyrolyzed to crystallize the perovskite of the desired composition and then heated to 1000 deg C to promote epitaxial grain growth. Pole figures obtained via X-ray diffraction as well as selected area diffraction (SAD) of TEM specimen with lattice mismatches of 2.5% (SrTi(0.5)Zr(0.5)O3 on SrTiO3), 5% (SrZrO3 on SrTiO3), 7.4% (BaZrO3 on SrTiO3) and 8.2% (SrZrO3 on LaAlO3) reveal only the epitaxial orientation 100(001) film (parallel lines) 100(001) substrate. The XRD and TEM results also indicate increasing polycrystallinity with increasing lattice mismatch. High resolution electron microscopy (HREM) of films on SrTiO3 demonstrated that an array of misfit dislocations is present at the interface. The misfit dislocations have line vectors 1 of a<100>-type and Burgers-vectors b of a<010>- type. Dislocation separation distances obtained with HREM and XRD lattice parameter measurements show that the strain energy within the films, due to lattice mismatch, is nearly fully relaxed. The mechanisms of epitaxial growth and dislocation formation are discussed.

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Document Details

Document Type
Technical Report
Publication Date
Feb 28, 1997
Accession Number
ADA322553

Entities

People

  • F. F. Lange
  • M. Ruehle
  • P. A. Langjahr
  • Thomas Wagner

Organizations

  • University of California, Santa Barbara

Tags

Communities of Interest

  • Air Platforms
  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Crystal Structure
  • Crystals
  • Cubic Lattices
  • Diffraction
  • Dislocations
  • Electron Microscopy
  • Epitaxial Growth
  • Grain Growth
  • High Resolution
  • Measurement
  • Microscopy
  • Orientation (Direction)
  • Phase Transformations
  • Substrates
  • Thin Films
  • X Rays
  • X-Ray Diffraction

Fields of Study

  • Materials science

Readers

  • Materials Science and Engineering.

Technology Areas

  • Microelectronics
  • Microelectronics - Graphene