- By:
- Vasudevan, Rama K; Ahmad, Laveeza; Pant, Bharat; Bulanadi, Ralph A; Haque, Asraful ; Kaur, Puneet; Neumayer, Sabine M; Yang, Jan-Chi; Liu, Yongtao ; Cao, Ye; Jesse, Stephen ; Checa Nualart, Marti
- Journal Name:
- Advanced Electronic Materials
- Volume:
- TBD
- Publication Date:
- July 14, 2026
- View DOI Listing:
- https://doi.org/10.1002/aelm.70472
Abstract
Polarization switching in ferroelectric materials arises from the collective evolution of complex domain hierarchies, yet deterministic control over these processes remains challenging. Here, we investigate scan-path- and initial-state-dependent switching in epitaxial (111)-oriented PbZr0.2Ti0.8O3 thin films using automated AFM-based writing combined with quantitative 3D piezoresponse force microscopy. We show that the scan trajectory acts as an experimentally accessible control parameter for superdomain formation. Box-in-box raster scans reproducibly stabilize ordered stripe superdomains with a reduced subset of symmetry-allowed variants, whereas spiral trajectories generate frustrated mixed-variant states with a broader distribution of final microstructures. Automated pulsing experiments further show that the local superdomain configuration at the nucleation site strongly influences the final written morphology. Phase-field modeling qualitatively reproduces the contrast between representative initial-state geometries and supports the role of compatibility constraints among competing ferroelastic pathways. These findings establish scan-path and initial-state engineering as practical handles to program ferroic order in hierarchical ferroelectric domain structures.