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Multi-scale characterisation of a ferroelectric polymer reveals the emergence of a morphological phase transition driven by temperature

Authors :
European Commission
European Research Council
Government of the United Kingdom
Hafner, Jonas [0000-0002-9733-8723]
Benaglia, Simone [0000-0001-8997-0967]
Richheimer, Filipe [0000-0002-5360-8381]
Maier, Franz J. [0000-0001-8845-1954]
Wood, Sebastian [0000-0002-8574-0475]
Platz, Daniel [0000-0002-5923-0279]
Schneider, Michael [0000-0001-9846-7132]
Hradil, Klaudia [0000-0002-6989-2495]
Castro, Fernando A. [0000-0002-2409-8300]
Hafner, Jonas
Benaglia, Simone
Richheimer, Filipe
Teuschel, Marco
Maier, Franz J.
Werner, Artner
Wood, Sebastian
Platz, Daniel
Schneider, Michael
Hradil, Klaudia
Castro, Fernando A.
García García, Ricardo
Schmid, Ulrich
European Commission
European Research Council
Government of the United Kingdom
Hafner, Jonas [0000-0002-9733-8723]
Benaglia, Simone [0000-0001-8997-0967]
Richheimer, Filipe [0000-0002-5360-8381]
Maier, Franz J. [0000-0001-8845-1954]
Wood, Sebastian [0000-0002-8574-0475]
Platz, Daniel [0000-0002-5923-0279]
Schneider, Michael [0000-0001-9846-7132]
Hradil, Klaudia [0000-0002-6989-2495]
Castro, Fernando A. [0000-0002-2409-8300]
Hafner, Jonas
Benaglia, Simone
Richheimer, Filipe
Teuschel, Marco
Maier, Franz J.
Werner, Artner
Wood, Sebastian
Platz, Daniel
Schneider, Michael
Hradil, Klaudia
Castro, Fernando A.
García García, Ricardo
Schmid, Ulrich
Publication Year :
2021

Abstract

[EN] Ferroelectric materials exhibit a phase transition to a paraelectric state driven by temperature - called the Curie transition. In conventional ferroelectrics, the Curie transition is caused by a change in crystal symmetry, while the material itself remains a continuous three-dimensional solid crystal. However, ferroelectric polymers behave differently. Polymeric materials are typically of semi-crystalline nature, meaning that they are an intermixture of crystalline and amorphous regions. Here, we demonstrate that the semi-crystalline morphology of the ferroelectric copolymer of vinylidene fluoride and trifluoroethylene (P(VDF-TrFE)) strongly affects its Curie transition, as not only a change in crystal symmetry but also in morphology occurs. We demonstrate, by high-resolution nanomechanical measurements, that the semicrystalline microstructure in the paraelectric state is formed by crystalline domains embedded into a softer amorphous phase. Using in situ X-ray diffraction measurements, we show that the local electromechanical response of the crystalline domains is counterbalanced by the amorphous phase, effectively masking its macroscopic effect. Our quantitative multiscale characterisations unite the nano- and macroscopic material properties of the ferroelectric polymer P(VDF-TrFE) through its semi-crystalline nature.

Details

Database :
OAIster
Notes :
English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1286575062
Document Type :
Electronic Resource