Epitaxial Strain Control of Relaxor Ferroelectric Phase Evolution

Abstract

Understanding and ultimately controlling the large electromechanical effects in relaxor ferroelectrics requires intimate knowledge of how the local‐polar order evolves under applied stimuli. Here, the biaxial‐strain‐induced evolution of and correlations between polar structures and properties in epitaxial films of the prototypical relaxor ferroelectric 0.68PbMg1/3Nb2/3O3–0.32PbTiO3 are investigated. X‐ray diffuse‐scattering studies reveal an evolution from a butterfly‐ to disc‐shaped pattern and an increase in the correlation‐length from ≈8 to ≈25 nm with increasing compressive strain. Molecular‐dynamics simulations reveal the origin of the changes in the diffuse‐scattering patterns and that strain induces polarization rotation and the merging of the polar order. As the magnitude of the strain is increased, relaxor behavior is gradually suppressed but is not fully quenched. Analysis of the dynamic evolution of dipole alignment in the simulations reveals that, while, for most unit‐cell chemistries and configurations, strain drives a tendency toward more ferroelectric‐like order, there are certain unit cells that become more disordered under strain, resulting in stronger competition between ordered and disordered regions and enhanced overall susceptibilities. Ultimately, this implies that deterministic creation of specific local chemical configurations could be an effective way to enhance relaxor performance.

Document Details

Document Type
Pub Defense Publication
Publication Date
Apr 10, 2019
Source ID
10.1002/adma.201901060

Entities

People

  • Abel Fernández
  • Andrew M Rappe
  • Anoop R Damodaran
  • Hiroyuki Takenaka
  • Jieun Kim
  • Lane W Martin
  • Linh Chung
  • Margaret R. McCarter
  • Ran Gao
  • Sahar Saremi
  • Yubo Qi

Organizations

  • Army Research Office
  • Gordon and Betty Moore Foundation
  • Lawrence Berkeley National Laboratory
  • National Science Foundation
  • Office of Naval Research
  • United States Department of Energy
  • University of California, Berkeley
  • University of Nebraska–Lincoln
  • University of Pennsylvania

Tags

Fields of Study

  • Physics

Readers

  • Materials Science and Engineering.
  • Systems Analysis and Design
  • Theoretical Analysis.

Technology Areas

  • Microelectronics
  • Microelectronics - Graphene