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From solid to liquid piezoelectric materials

Gill, Minakshi and Máthé, Marcell Tibor and Salamon, Péter and Gleeson, James T. and Jákli, Antal (2025) From solid to liquid piezoelectric materials. MATERIALS HORIZONS. ISSN 2051-6347 (In Press)

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Abstract

The history and evolution of piezoelectricity are reviewed, starting from the discovery of pressure ("piezo" in Greek) electricity by the Curie brothers in a ferroelectric crystal until today, when liquid piezoelectricity is being observed in polar anisotropic fluids, namely, the ferroelectric nematic liquid crystal (NF) materials. As effects analogous to the piezoelectricity have been observed in various crystals, polymers and biomaterials with lack of inversion symmetry, the definition of piezoelectricity has evolved to describe a linear coupling between mechanical stress and electric polarization. Mechanical stress-induced electric polarization is called direct piezoelectricity, and electric field-induced mechanical stress is called converse piezoelectricity. Soon after the discovery of ferroelectricity in chiral liquid crystals with two- and one-dimensional fluid order, owing to the lack of their inversion symmetry, linear electromechanical effects analogous to direct and converse piezoelectricity have also been observed in those materials. While these materials in certain directions can sustain static stress, the NF phase is truly a three-dimensional fluid, and a steady stress can only be sustained by surface tension. The review concludes with a summary and analysis of direct and converse piezoelectric measurements on several NF materials, followed by the challenges and possible future applications of liquid piezoelectricity.

Item Type: Article
Additional Information: Funding Agency and Grant Number: US National Science Foundation [DMR-2210083]; Hungarian National Research, Development, and Innovation Office [NKFIH FK142643, 2023-1.2.1-ERA_NET-2023-00008]; Janos Bolyai Research Scholarship of the Hungarian Academy of Sciences (HAS) Funding text: This work was financially supported by the US National Science Foundation under grant DMR-2210083 and the Hungarian National Research, Development, and Innovation Office under grants NKFIH FK142643, 2023-1.2.1-ERA_NET-2023-00008. P. S. was supported by the Janos Bolyai Research Scholarship of the Hungarian Academy of Sciences (HAS).
Uncontrolled Keywords: PERFORMANCE; FILMS; SENSOR; CRYSTALS; polymer composites; Chemistry, Multidisciplinary; Goldstone mode; nanogenerator; LEAD TITANATE ZIRCONATE; ELECTROMECHANICAL RESPONSES;
Subjects: Q Science / természettudomány > QC Physics / fizika
SWORD Depositor: MTMT SWORD
Depositing User: MTMT SWORD
Date Deposited: 15 Sep 2025 04:15
Last Modified: 15 Sep 2025 04:15
URI: https://real.mtak.hu/id/eprint/224224

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