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April 18, 2026Nano Research1 citationsOpen Access

Strain gradient induced vortex-like domain evolution in freestanding ferroelectric membranes

BZButong ZhangGLGuangming LuWQWanbo Qu

Key Points

  • This research aims to investigate the evolution of ferroelectric vortex domains under varying strain conditions.
  • Utilized freestanding bent PbTiO3 membranes to manipulate strain gradients.
  • Conducted experimental observations of domain evolution in response to bending strain.
  • Performed complementary atomistic simulations to understand underlying mechanisms.
  • As bending strain increases, c-domains transition to c- and a-mixed domains.
  • Vortex-like structures emerge at a bending strain of 5.2%.
  • Simulations confirm that strain gradients trigger domain formation via continuous dipole rotation.

Abstract

Ferroelectric vortex domains in strained ferroelectric membranes have recently garnered significant scientific interest. However, understanding domain evolution under varying strain conditions has been challenging due to experimental limitations in generating precise strain gradients. Our research introduces a novel approach to strain gradient manipulation in single-layer ferroelectric membranes. By experimentally investigating freestanding bent PbTiO3 membranes, we directly observed ferroelectric vortex-like domains. As bending strain increases, c-domains progressively transition to c- and a-mixed domains, with vortex-like structures emerging at a critical bending strain of 5.2%. Complementary atomistic simulations confirm that strain gradients trigger domain formation through continuous dipole rotation at the domain boundaries. This work unveils a strategy for generating sophisticated ferroelectric domain architectures and its mechanism, offering promising pathways for engineering novel polar textures in next-generation electronic devices.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69e31f1a40886becb653e845https://doi.org/10.26599/nr.2026.94908712
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