Issue 25, 2023

Ferro- and ferrielectricity and negative piezoelectricity in thioamide-based supramolecular organic discotics

Abstract

Amide-based discotic supramolecular organic materials are of interest for fundamental understanding of cooperative self-assembly and collective dipole switching mechanisms as well as for practically relevant ferroelectric and piezoelectric properties. Here, we show how replacing amides (dipole moment of ∼3.5 D) with thioamides (∼5.1 D) as dipolar moieties in the archetypal C3-symmetric discotic molecule BTA leads to ferroelectric materials with a higher remnant polarization and lower coercive field. The thioamide-based materials also demonstrate a rare negative piezoelectricity and a previously predicted, yet never experimentally observed, polarization reversal via asymmetric intermediate states, that is, ferrielectric switching.

Graphical abstract: Ferro- and ferrielectricity and negative piezoelectricity in thioamide-based supramolecular organic discotics

Supplementary files

Article information

Article type
Paper
Submitted
02 Mar 2023
Accepted
12 Jun 2023
First published
13 Jun 2023

Phys. Chem. Chem. Phys., 2023,25, 16930-16937

Ferro- and ferrielectricity and negative piezoelectricity in thioamide-based supramolecular organic discotics

I. Urbanaviciute, M. Garcia-Iglesias, A. Gorbunov, E. W. Meijer and M. Kemerink, Phys. Chem. Chem. Phys., 2023, 25, 16930 DOI: 10.1039/D3CP00982C

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