Strong lead-free bioinspired piezoceramics for durable energy transducers

Fuente: arXiv
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Autori principali: Yang, Ruxue, Zate, Temesgen Tadeyos, Wang, Peiren, Mojumder, Soumyajit, Mogensen, Elo Overgaard, Gavalda-Diaz, Oriol, Li, Zihe, Kumar, Ajeet, Roscow, James, Khanbareh, Hamideh, Haugen, Astri Bjørnetun, Bouville, Florian
Natura: Preprint
Pubblicazione: 2025
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author Yang, Ruxue
Zate, Temesgen Tadeyos
Wang, Peiren
Mojumder, Soumyajit
Mogensen, Elo Overgaard
Gavalda-Diaz, Oriol
Li, Zihe
Kumar, Ajeet
Roscow, James
Khanbareh, Hamideh
Haugen, Astri Bjørnetun
Bouville, Florian
author_facet Yang, Ruxue
Zate, Temesgen Tadeyos
Wang, Peiren
Mojumder, Soumyajit
Mogensen, Elo Overgaard
Gavalda-Diaz, Oriol
Li, Zihe
Kumar, Ajeet
Roscow, James
Khanbareh, Hamideh
Haugen, Astri Bjørnetun
Bouville, Florian
contents Durable, high-performance and eco-friendly lead-free piezoceramics are essential for next-generation sustainable energy transducers and electromechanical systems. While significant performance enhancements have been made, through chemical composition, texture, or crystal defects, piezoceramics are intrinsically weak mechanically, which negatively impact their working conditions and durability. What's more, improving comprehensive mechanical durability without sacrificing piezoelectric performance remains a key challenge. Here, we design bioinspired Bi0.5Na0.5TiO3 (BNT) ceramics using a scalable colloidal process that enables multiscale control over the microstructure. The design comprises plate-like monocrystalline BNT bricks stacked to induce a crystallographic texture along the poling direction, bonded together by a silica-based mortar, forming the brick-and-mortar phase. This deliberate microstructure design yields 2- to 3-fold increase in flexural strength, and 1.6- to 2-fold increase in fracture toughness compared with a BNT synthesized conventionally, comparable to common structural ceramics, without sacrificing the piezoelectric performance. In addition, the bioinspired BNT exhibit dramatically enhanced ferroelectric fatigue resistance, with a 10- to 15-folds improvement in the number of field-induced electromechanical cycles before failure. These gains originate from anisotropic residual stress fields, revealed by Raman spectroscopy and XRD, which delay crack initiation events. Furthermore, we demonstrated enhanced transducing capability and electromechanical fatigue resistance using a cantilever beam-based piezoelectric transducer under bending mode. Given its non-chemical-compositional origin, this bioinspired strategy could be broadly applicable to other piezoelectric material systems for applications where both functional and structural performance are critical.
format Preprint
id arxiv_https___arxiv_org_abs_2508_15382
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Strong lead-free bioinspired piezoceramics for durable energy transducers
Yang, Ruxue
Zate, Temesgen Tadeyos
Wang, Peiren
Mojumder, Soumyajit
Mogensen, Elo Overgaard
Gavalda-Diaz, Oriol
Li, Zihe
Kumar, Ajeet
Roscow, James
Khanbareh, Hamideh
Haugen, Astri Bjørnetun
Bouville, Florian
Materials Science
Applied Physics
Durable, high-performance and eco-friendly lead-free piezoceramics are essential for next-generation sustainable energy transducers and electromechanical systems. While significant performance enhancements have been made, through chemical composition, texture, or crystal defects, piezoceramics are intrinsically weak mechanically, which negatively impact their working conditions and durability. What's more, improving comprehensive mechanical durability without sacrificing piezoelectric performance remains a key challenge. Here, we design bioinspired Bi0.5Na0.5TiO3 (BNT) ceramics using a scalable colloidal process that enables multiscale control over the microstructure. The design comprises plate-like monocrystalline BNT bricks stacked to induce a crystallographic texture along the poling direction, bonded together by a silica-based mortar, forming the brick-and-mortar phase. This deliberate microstructure design yields 2- to 3-fold increase in flexural strength, and 1.6- to 2-fold increase in fracture toughness compared with a BNT synthesized conventionally, comparable to common structural ceramics, without sacrificing the piezoelectric performance. In addition, the bioinspired BNT exhibit dramatically enhanced ferroelectric fatigue resistance, with a 10- to 15-folds improvement in the number of field-induced electromechanical cycles before failure. These gains originate from anisotropic residual stress fields, revealed by Raman spectroscopy and XRD, which delay crack initiation events. Furthermore, we demonstrated enhanced transducing capability and electromechanical fatigue resistance using a cantilever beam-based piezoelectric transducer under bending mode. Given its non-chemical-compositional origin, this bioinspired strategy could be broadly applicable to other piezoelectric material systems for applications where both functional and structural performance are critical.
title Strong lead-free bioinspired piezoceramics for durable energy transducers
topic Materials Science
Applied Physics
url https://arxiv.org/abs/2508.15382