Mechanical Control of Polar Order

Fuente: arXiv
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Hauptverfasser: Gupta, Pushpendra, Meisenheimer, Peter, Li, Xinyan, Husain, Sajid, Srikrishna, Vishantak, Cortesis, Ashley, Han, Yimo, Ramesh, Ramamoorthy
Format: Preprint
Veröffentlicht: 2026
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author Gupta, Pushpendra
Meisenheimer, Peter
Li, Xinyan
Husain, Sajid
Srikrishna, Vishantak
Cortesis, Ashley
Han, Yimo
Ramesh, Ramamoorthy
author_facet Gupta, Pushpendra
Meisenheimer, Peter
Li, Xinyan
Husain, Sajid
Srikrishna, Vishantak
Cortesis, Ashley
Han, Yimo
Ramesh, Ramamoorthy
contents BiFeO3 is a model multiferroic in which the ferroelectric polarization is coupled to ferroelastic lattice distortions, yet deterministic control of its domain structure remains limited by high switching fields and competing polarization variants. Here, we identify a mechanically assisted polarization switching pathway in epitaxial BiFeO3 thin films that fundamentally alters the switching energetics. Using just out-of-plane electric fields, polarization reversal requires voltages of approximately 4 V and stabilizes coexisting polarization states. In contrast, when mechanical pressure is applied concurrently, the coercive voltage can be significantly reduced (even to 0V), resulting in spontaneous switching. Piezoresponse force microscopy measurements reveal that applied mechanical pressure suppresses ferroelastic domain competition, indicating a decrease in the required electrical energy barrier associated with polarization rotation and domain wall motion. These results demonstrate that stress acts as an active thermodynamic control parameter, enabling access to switching pathways that are inaccessible under only an electric field. By directly coupling lattice distortions to polarization reversal, mechanically assisted switching provides a general framework for controlling coupled order parameters in multiferroic oxides, which can be directly applied in the device-level architecture, where a small mechanical pressure can help in achieving lower switching energy of ferroelectric polarization. This work advances the fundamental understanding of electromechanical coupling in complex ferroics and establishes mechanical energy as a powerful tool for probing and manipulating ferroelastic ferroelectric interactions.
format Preprint
id arxiv_https___arxiv_org_abs_2603_15984
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Mechanical Control of Polar Order
Gupta, Pushpendra
Meisenheimer, Peter
Li, Xinyan
Husain, Sajid
Srikrishna, Vishantak
Cortesis, Ashley
Han, Yimo
Ramesh, Ramamoorthy
Materials Science
Applied Physics
BiFeO3 is a model multiferroic in which the ferroelectric polarization is coupled to ferroelastic lattice distortions, yet deterministic control of its domain structure remains limited by high switching fields and competing polarization variants. Here, we identify a mechanically assisted polarization switching pathway in epitaxial BiFeO3 thin films that fundamentally alters the switching energetics. Using just out-of-plane electric fields, polarization reversal requires voltages of approximately 4 V and stabilizes coexisting polarization states. In contrast, when mechanical pressure is applied concurrently, the coercive voltage can be significantly reduced (even to 0V), resulting in spontaneous switching. Piezoresponse force microscopy measurements reveal that applied mechanical pressure suppresses ferroelastic domain competition, indicating a decrease in the required electrical energy barrier associated with polarization rotation and domain wall motion. These results demonstrate that stress acts as an active thermodynamic control parameter, enabling access to switching pathways that are inaccessible under only an electric field. By directly coupling lattice distortions to polarization reversal, mechanically assisted switching provides a general framework for controlling coupled order parameters in multiferroic oxides, which can be directly applied in the device-level architecture, where a small mechanical pressure can help in achieving lower switching energy of ferroelectric polarization. This work advances the fundamental understanding of electromechanical coupling in complex ferroics and establishes mechanical energy as a powerful tool for probing and manipulating ferroelastic ferroelectric interactions.
title Mechanical Control of Polar Order
topic Materials Science
Applied Physics
url https://arxiv.org/abs/2603.15984