A Polar Topology Network Induces Elastic Stiffening in Ferroelectric Oxide Superlattices

ABSTRACT In oxide superlattices, the combined effect of strain and interlayer electrostatic interactions enables the stabilization of exotic polar topologies. Yet, their collective role in the mechanical response of the system remains largely unexplored. Here, we show that a high density of polar textures forms an elastically constrained network that stiffens the heterostructure. In our model system of BiFeO 3 /SrTiO 3 superlattices, systematic variation of periodicity tunes the balance between the depolarization field and interlayer coupling, driving a deterministic transition from smeared polar nanodomains to a topology‐rich regime and then to a labyrinthine multidomain state. Transmission electron microscopy reveals that this topological evolution is accompanied by pronounced strain heterogeneity in the BiFeO 3 layer and an induced tetragonality in the dielectric spacer, suggesting a more active role played by the dielectric layer in the topological phase evolution. Remarkably, nanoindentation experiments show that the topology‐rich configuration exhibits a prominent 20% increase in the effective elastic modulus compared to the multidomain state. Further, Monte Carlo simulations show how the topology governs mechanical response through topological defect‐induced stiffening. These results establish a jammed‐like scenario in which dense topological defects collectively restrict stress accommodation pathways and highlight periodicity as a design parameter for topology‐mediated response in polar oxide superlattices.

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Journal
Small
Published
2026-09-16
DOI
https://doi.org/10.1002/smll.75806
Primary Topic
Ferroelectric and Piezoelectric Materials
Type
article
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article

A Polar Topology Network Induces Elastic Stiffening in Ferroelectric Oxide Superlattices

He Tian, Peiran Tong, Seungbum Hong, Daniel Sando et al.
Small
Ferroelectric and Piezoelectric Materials
article

A Polar Topology Network Induces Elastic Stiffening in Ferroelectric Oxide Superlattices

He Tian, Peiran Tong, Seungbum Hong, Daniel Sando, V. Nagarajan, Zijian Hong, Mohammad Moein Seyfouri, Bin Xu, Yoonah Ko, Qi Zhang, Menghui Xia
article en

Abstract

ABSTRACT In oxide superlattices, the combined effect of strain and interlayer electrostatic interactions enables the stabilization of exotic polar topologies. Yet, their collective role in the mechanical response of the system remains largely unexplored. Here, we show that a high density of polar textures forms an elastically constrained network that stiffens the heterostructure. In our model system of BiFeO 3 /SrTiO 3 superlattices, systematic variation of periodicity tunes the balance between the depolarization field and interlayer coupling, driving a deterministic transition from smeared polar nanodomains to a topology‐rich regime and then to a labyrinthine multidomain state. Transmission electron microscopy reveals that this topological evolution is accompanied by pronounced strain heterogeneity in the BiFeO 3 layer and an induced tetragonality in the dielectric spacer, suggesting a more active role played by the dielectric layer in the topological phase evolution. Remarkably, nanoindentation experiments show that the topology‐rich configuration exhibits a prominent 20% increase in the effective elastic modulus compared to the multidomain state. Further, Monte Carlo simulations show how the topology governs mechanical response through topological defect‐induced stiffening. These results establish a jammed‐like scenario in which dense topological defects collectively restrict stress accommodation pathways and highlight periodicity as a design parameter for topology‐mediated response in polar oxide superlattices.

Small
Korea Advanced Institute of Science and Technology (KR), Hainan University (CN), UNSW Sydney (AU), Soochow University (CN), Zhejiang Provincial Institute of Communications Planning,Design & Research (CN), Australian Wool Innovation (Australia) (AU), Zhejiang Lab (CN), Zhejiang University (CN), Macquarie University (AU), MacDiarmid Institute for Advanced Materials and Nanotechnology (NZ)
Openalex Percentile: Top 24%
Ferroelectric and Piezoelectric Materials
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