A novel lead-free 1-3-type composite based on a ferroelectric domain-engineered single crystal is put forward. In the porous polymer matrix of this composite, two different porous structures are observed, and the effect of these structures on the piezoelectric performance, electromechanical coupling and related anisotropy parameters of 1-3-type composites is first studied. New diagrams that link the volume fractions of the single-crystal component and the porous regions in the polymer medium are built to show validity of conditions for a large anisotropy of piezoelectric coefficients d3j∗ and electromechanical coupling factors k3j∗, kt∗ and kp∗. In the composites based on the complex alkali niobate alkali tantalate single crystal with small piezoelectric anisotropy (d331)/|d311)| = 2.1), the three anisotropy factors d33∗/|d31∗| ≥ 5, k33∗/|k31∗| ≥ 5 and kt∗/|kp∗| ≥ 5 hold simultaneously due to the presence of layers with heavily prolate and heavily oblate air pores in the porous polymer matrix. The two porosity levels influence the elastic anisotropy of the porous matrix, and this leads to an increase in the three anisotropy factors across wide volume-fraction ranges. Of independent interest is the high piezoelectric sensitivity of the composites for which the condition g33∗ ≥1 V m N-1 holds at their piezoelectric coefficient d33∗ ≈ (200-500) pC N-1 and electromechanical coupling factors k33∗ ≈ kt∗ ≈ 0.8-0.9. The studied parameters of the novel piezo-active 1-3-type composites are of value for various applications such as active elements of piezoelectric transducers, energy-harvesting devices and sensors.

Topolov, V.y., Isaeva, A.n., Bisegna, P. (2020). Novel lead-free composites with two porosity levels: Large piezoelectric anisotropy and high sensitivity. JOURNAL OF PHYSICS D. APPLIED PHYSICS, 53(39), 395303 [10.1088/1361-6463/ab946c].

Novel lead-free composites with two porosity levels: Large piezoelectric anisotropy and high sensitivity

Bisegna P.
2020-07-10

Abstract

A novel lead-free 1-3-type composite based on a ferroelectric domain-engineered single crystal is put forward. In the porous polymer matrix of this composite, two different porous structures are observed, and the effect of these structures on the piezoelectric performance, electromechanical coupling and related anisotropy parameters of 1-3-type composites is first studied. New diagrams that link the volume fractions of the single-crystal component and the porous regions in the polymer medium are built to show validity of conditions for a large anisotropy of piezoelectric coefficients d3j∗ and electromechanical coupling factors k3j∗, kt∗ and kp∗. In the composites based on the complex alkali niobate alkali tantalate single crystal with small piezoelectric anisotropy (d331)/|d311)| = 2.1), the three anisotropy factors d33∗/|d31∗| ≥ 5, k33∗/|k31∗| ≥ 5 and kt∗/|kp∗| ≥ 5 hold simultaneously due to the presence of layers with heavily prolate and heavily oblate air pores in the porous polymer matrix. The two porosity levels influence the elastic anisotropy of the porous matrix, and this leads to an increase in the three anisotropy factors across wide volume-fraction ranges. Of independent interest is the high piezoelectric sensitivity of the composites for which the condition g33∗ ≥1 V m N-1 holds at their piezoelectric coefficient d33∗ ≈ (200-500) pC N-1 and electromechanical coupling factors k33∗ ≈ kt∗ ≈ 0.8-0.9. The studied parameters of the novel piezo-active 1-3-type composites are of value for various applications such as active elements of piezoelectric transducers, energy-harvesting devices and sensors.
10-lug-2020
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore ICAR/08 - SCIENZA DELLE COSTRUZIONI
English
Con Impact Factor ISI
anisotropy; composite; electromechanical coupling factors; piezoelectric coefficients; porous polymer
Topolov, V.y., Isaeva, A.n., Bisegna, P. (2020). Novel lead-free composites with two porosity levels: Large piezoelectric anisotropy and high sensitivity. JOURNAL OF PHYSICS D. APPLIED PHYSICS, 53(39), 395303 [10.1088/1361-6463/ab946c].
Topolov, Vy; Isaeva, An; Bisegna, P
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/266590
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