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Ultrahigh Electrostrictive Effect in Lead-Free Sodium Bismuth Titanate-Based Relaxor Ferroelectric Thick Film.

Authors :
Li, Yizhuo
Zhao, Jinyan
Wang, Zhe
Zheng, Kun
Zhang, Jie
Chen, Chuying
Wang, Lingyan
Wang, Genshui
Li, Xin
Zhao, Yulong
Niu, Gang
Ren, Wei
Source :
Nanomaterials (2079-4991); Sep2024, Vol. 14 Issue 17, p1411, 14p
Publication Year :
2024

Abstract

In recent years, the development of environmentally friendly, lead-free ferroelectric films with prominent electrostrictive effects have been a key area of focus due to their potential applications in micro-actuators, sensors, and transducers for advanced microelectromechanical systems (MEMS). This work investigated the enhanced electrostrictive effect in lead-free sodium bismuth titanate-based relaxor ferroelectric films. The films, composed of (Bi<subscript>0.5</subscript>Na<subscript>0.5</subscript>)<subscript>0.8−x</subscript>Ba<subscript>x</subscript>Sr<subscript>0.2</subscript>TiO<subscript>3</subscript> (BNBST, x = 0.02, 0.06, and 0.11), with thickness around 1 μm, were prepared using a sol-gel method on Pt/TiO<subscript>2</subscript>/SiO<subscript>2</subscript>/Si substrates. By varying the Ba<superscript>2+</superscript> content, the crystal structure, morphology, and electrical properties, including dielectric, ferroelectric, strain, and electromechanical performance, were investigated. The films exhibited a single pseudocubic structure without preferred orientation. A remarkable strain response (S > 0.24%) was obtained in the films (x = 0.02, 0.06) with the coexistence of nonergodic and ergodic relaxor phases. Further, in the x = 0.11 thick films with an ergodic relaxor state, an ultrahigh electrostrictive coefficient Q of 0.32 m<superscript>4</superscript>/C<superscript>2</superscript> was achieved. These findings highlight the potential of BNBST films as high-performance, environmentally friendly electrostrictive films for advanced microelectromechanical systems (MEMS) and electronic devices. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20794991
Volume :
14
Issue :
17
Database :
Complementary Index
Journal :
Nanomaterials (2079-4991)
Publication Type :
Academic Journal
Accession number :
179645442
Full Text :
https://doi.org/10.3390/nano14171411