Ultrahigh electromechanical response in (K,Na)NbO3-based lead-free textured piezoceramics

Author:

Liu Yang12ORCID,Bian Lang1ORCID,Zhang Rui1ORCID,Fan Jinhui1,Huo Da1,Shen Bingzhong1,Huang Houbing3ORCID,Shi Xiaoming4ORCID,Wang Dawei1ORCID,Yao Kui2ORCID

Affiliation:

1. School of Instrumentation Science and Engineering, Harbin Institute of Technology 1 , Harbin 150080, China

2. Institute of Materials Research and Engineering (IMRE), A*STAR (Agency for Science, Technology and Research) 2 , Singapore 138634

3. School of Materials Science and Engineering and Advanced Research Institute of Multidisciplinary Science, Beijing Institute of Technology 3 , Beijing 100081, China

4. School of Mathematics and Physics, University of Science and Technology Beijing 4 , Beijing 100083, China

Abstract

The progress of next-generation electromechanical devices is substantially reliant upon achieving high electromechanical coupling performance in piezoelectric materials. Here, a local stress regulation strategy is introduced to significantly enhance the overall electromechanical response of lead-free piezoceramics. A remarkable large piezoelectric coefficient (d33) of ∼800 pC N−1 and longitudinal electromechanical coupling factor (k33) of 88% are obtained in (K,Na)NbO3 (KNN)-based textured piezoceramics. From both experimental examinations and theoretical simulation, including phase-field analyses, it is found that the improved piezoelectric performance primarily stems from the stress-induced elastic field aligned with the preferred crystallographic orientation, which constrains the domain size, resulting in nanoscale short-range ordered domain structures. Such structures facilitate the flexible rotation of electric dipoles within coexisting phases due to flattened free energy distribution, thereby leading to the exceptionally large piezoelectric response. This understanding provides valuable guidance for the design of novel lead-free piezoceramics with excellent piezoelectric performance.

Funder

National Natural Science Foundation of China

Heilongjiang Touyan Innovation Team Program

Medical Engineeringcross research fund of Harbin Institute of Technology

RIE2020 AME Programmatic Fund

Publisher

AIP Publishing

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