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Giant Electrostriction in Halide Perovskites Revisited With Double-Modulation Interferometry

Title data

Ramming, Philipp ; Griesbach, Markus ; Moos, Ralf ; Kador, Lothar ; Köhler, Anna:
Giant Electrostriction in Halide Perovskites Revisited With Double-Modulation Interferometry.
In: Advanced Functional Materials. Vol. 36 (2026) . - e77197.
ISSN 1616-3028
DOI: https://doi.org/10.1002/adfm.77197

Official URL: Volltext

Project information

Project title:
Project's official title
Project's id
SFB 1585: Strukturierte Funktionsmaterialien für multiplen Transport in nanoskaligen räumlichen Einschränkungen
492723217

Project financing: Deutsche Forschungsgemeinschaft

Abstract in another language

A reported giant electrostrictive effect in halide perovskites has attracted interest for its physical origin and for potential applications in actuation and sensing. However, despite the reported exceptionally large magnitude of the effect, systematic experimental investigation remains limited. In this work, the electromechanical response of methylammonium lead halide perovskites (MAPbX3; X═I, Br, Cl) in the form of powder-pressed pellets, MAPbBr3 single crystals, and MAPbI3 thin films is investigated using a high-resolution double-modulation interferometer. Reference measurements using a commercial electrostrictive polymer confirm that the setup resolves sub-nanometer electromechanical displacements. In contrast to previous reports of giant electrostrictive compression in halide perovskites, no such intrinsic compressive electrostriction is observed in any of the samples. Instead, an expansion at twice the driving frequency is detected. Analysis of the frequency dependence and step response indicates that the expansion arises primarily from thermal expansion caused by Ohmic currents that lead to Joule heating.

Further data

Item Type: Article in a journal
Refereed: Yes
Institutions of the University: Faculties > Faculty of Mathematics, Physics und Computer Science > Department of Physics
Faculties > Faculty of Mathematics, Physics und Computer Science > Department of Physics > Chair Experimental Physics II - Optoelectronics of Soft Matter > Chair Experimental Physics II - Optoelectronics of Soft Matter - Univ.-Prof. Dr. Anna Köhler
Faculties > Faculty of Engineering Science
Faculties > Faculty of Engineering Science > Chair Functional Materials > Chair Functional Materials - Univ.-Prof. Dr.-Ing. Ralf Moos
Profile Fields > Advanced Fields > Advanced Materials
Research Institutions > Central research institutes > Bayreuth Institute of Macromolecular Research - BIMF
Research Institutions > Central research institutes > Bayreuth Center for Material Science and Engineering - BayMAT
Research Institutions > Collaborative Research Centers, Research Unit > SFB 1585 - MultiTrans – Structured functional materials for multiple transport in nanoscale confinements
Result of work at the UBT: Yes
DDC Subjects: 600 Technology, medicine, applied sciences > 620 Engineering
Date Deposited: 31 Aug 2026 07:52
Last Modified: 31 Aug 2026 07:52
URI: https://eref.uni-bayreuth.de/id/eprint/99328