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Decoding THz-Driven Dynamic Fingerprints of Ferroelectric Nanotwin Networks

  • Xiaojiang Li
  • , Aiden Ross
  • , Vladimir A. Stoica
  • , Sujit Das
  • , Sankalpa Hazra
  • , Huaiyu Wang
  • , Hari Padma
  • , Matthias C. Hoffmann
  • , Patrick Kramer
  • , Sanghoon Song
  • , Silke Nelson
  • , Takahiro Sato
  • , Diling Zhu
  • , Ramamoorthy Ramesh
  • , Lane W. Martin
  • , Yue Cao
  • , John W. Freeland
  • , Aaron M. Lindenberg
  • , Haidan Wen
  • , Long Qing Chen
  • Venkatraman Gopalan

Research output: Contribution to journalArticlepeer-review

Abstract

Ultrafast polarization dynamics in ferroelectrics are of considerable interest for high-speed tunable dielectrics and electro-optics. Extended domain wall networks formed in ferroelectric twin nanodomains can support collective dynamics in the terahertz regime but require techniques that track polarization and strain evolution driven by ultrafast stimulus. Here, we use multi-modal probing of THz-pulse-driven excitations in PbTiO3/SrTiO3 superlattices by combining X-ray free electron laser measurements that directly tracks lattice changes, with optical second harmonic generation that tracks the electronic potential coupled with the lattice potential. Dynamical phase-field modeling enables fingerprinting of these collective modes as superpositions of domain “breathing” through wall oscillations and polarization “rotations” with still walls. Ultrafast domain wall motion at 0.1–0.5 THz is observed at practical fields of 100 kV/cm with wall velocities of >4000 m/s, approaching typical speed of sound in PbTiO3. A unique “charging” mode is discovered that can electrically charge and discharge domain walls on ∼4 ps time scale thus dynamically tuning wall conductivity. Integrated experimental and theoretical fingerprinting of the dynamical landscape presented here enables ultrafast control of ferroics for high-speed microelectronics and optical applications.

Original languageEnglish (US)
Article numbere73118
JournalAdvanced Materials
Volume38
Issue number32
DOIs
StatePublished - Jun 8 2026

All Science Journal Classification (ASJC) codes

  • General Materials Science
  • Mechanics of Materials
  • Mechanical Engineering

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