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Ferroelectric Dynamic-Field-Driven Nucleation and Growth Model for Predictive Materials-To-Circuit Co-Design

  • Yi Liang
  • , Soohyeon Kim
  • , Tony Chiang
  • , Megan K. Lenox
  • , Ian Mercer
  • , John J. Plombon
  • , Jon Paul Maria
  • , Jon F. Ihlefeld
  • , Wenhao Sun
  • , Wei Lu
  • , John T. Heron

Research output: Contribution to journalArticlepeer-review

Abstract

Real ferroelectric devices operate under mixed and distorted time-varying voltages, yet the standard nucleation-growth frameworks used to interpret ferroelectric switching, most notably the Kolmogorov-Avrami-Ishibashi (KAI) and nucleation-limited switching models (NLS), are derived under the critically limiting assumption of a constant electric field. Thus, the prevailing interpretation of ferroelectric switching dynamics fails under real operating conditions. Here we introduce a compact dynamic-field-driven nucleation and growth (DFNG) model that enables quantitative fits to switching transients across multiple ferroelectric materials to extract time-varying domain wall velocity and growth dimensionality, even under arbitrary voltage waveforms. This capability then motivates its use in device modeling under complex signals spanning disparate time and frequency scales. Coupling the compact model to application-related waveforms and a circuit-level simulation platform facilitates a predictive materials-circuit co-design framework by linking nucleation and growth parameters to memory window, disturb error, speed, and energy dissipation for next-generation ferroelectric technologies.

Original languageEnglish (US)
Article numbere73722
JournalAdvanced Materials
Volume38
Issue number40
DOIs
StatePublished - Jul 17 2026

All Science Journal Classification (ASJC) codes

  • General Materials Science
  • Mechanics of Materials
  • Mechanical Engineering

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