Antiferroelectric order in nematic liquids: Flexoelectricity vs electrostatics

Fuente: arXiv
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Autores principales: Rupnik, Peter Medle, Hanžel, Ema, Lovšin, Matija, Osterman, Natan, Gibb, Calum J., Mandle, Richard J., Sebastián, Nerea, Mertelj, Alenka
Formato: Preprint
Publicado: 2024
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author Rupnik, Peter Medle
Hanžel, Ema
Lovšin, Matija
Osterman, Natan
Gibb, Calum J.
Mandle, Richard J.
Sebastián, Nerea
Mertelj, Alenka
author_facet Rupnik, Peter Medle
Hanžel, Ema
Lovšin, Matija
Osterman, Natan
Gibb, Calum J.
Mandle, Richard J.
Sebastián, Nerea
Mertelj, Alenka
contents The recent discovery of ferroelectric nematic liquid crystalline phases marks a major breakthrough in soft matter research. An intermediate phase, often observed between the nonpolar and the ferroelectric nematic phase, shows a distinct antiferroelectric response to electric fields. However, its structure and formation mechanisms remain debated, with flexoelectric and electrostatics effects proposed as competing mechanisms. By controlling the magnitude of electrostatic forces through ion addition in two representative ferroelectric nematic materials, we show that the primary mechanism for the emergence of antiferroelectric order is the flexoelectric coupling between electric polarization and splay deformation of the nematic director. The addition of ions significantly expands the temperature range over which the antiferroelectric phase is observed, with this range increasing with increasing ion concentration. Polarizing optical microscopy studies and second harmonic generation microscopy reveal the splayed structure modulated in two dimensions, while SHG interferometry confirms its antiferroelectric character. We extend the model previously used to describe pretransitional behaviour by incorporating the electrostatic contribution of ions. The model shows qualitative agreement with the experiments, accurately reproducing the phase diagram and temperature-dependent evolution of the modulation period of the observed structure.
format Preprint
id arxiv_https___arxiv_org_abs_2411_06915
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Antiferroelectric order in nematic liquids: Flexoelectricity vs electrostatics
Rupnik, Peter Medle
Hanžel, Ema
Lovšin, Matija
Osterman, Natan
Gibb, Calum J.
Mandle, Richard J.
Sebastián, Nerea
Mertelj, Alenka
Soft Condensed Matter
The recent discovery of ferroelectric nematic liquid crystalline phases marks a major breakthrough in soft matter research. An intermediate phase, often observed between the nonpolar and the ferroelectric nematic phase, shows a distinct antiferroelectric response to electric fields. However, its structure and formation mechanisms remain debated, with flexoelectric and electrostatics effects proposed as competing mechanisms. By controlling the magnitude of electrostatic forces through ion addition in two representative ferroelectric nematic materials, we show that the primary mechanism for the emergence of antiferroelectric order is the flexoelectric coupling between electric polarization and splay deformation of the nematic director. The addition of ions significantly expands the temperature range over which the antiferroelectric phase is observed, with this range increasing with increasing ion concentration. Polarizing optical microscopy studies and second harmonic generation microscopy reveal the splayed structure modulated in two dimensions, while SHG interferometry confirms its antiferroelectric character. We extend the model previously used to describe pretransitional behaviour by incorporating the electrostatic contribution of ions. The model shows qualitative agreement with the experiments, accurately reproducing the phase diagram and temperature-dependent evolution of the modulation period of the observed structure.
title Antiferroelectric order in nematic liquids: Flexoelectricity vs electrostatics
topic Soft Condensed Matter
url https://arxiv.org/abs/2411.06915