Extraordinarily Large Contribution Ratio of Ferroelastic Domain Switching to Piezoresponse in Monoclinic (K, Na)NbO3 Films

Author:

Yuan Xueyou1,Okamoto Kazuki1,Kawano Mitsuki1,Yoshino Masahito1,Nagasaki Takanori1,Imai Yasuhiko2,Sakata Osami23,Yamada Tomoaki14ORCID

Affiliation:

1. Department of Energy Engineering Nagoya University Nagoya 464–8603 Japan

2. Japan Synchrotron Radiation Research Institute (JASRI) 1‐1‐1 Kouto, Sayo Hyogo 679–5198 Japan

3. Synchrotron X‐ray Group Research Center for Advanced Measurement and Characterization National Institute for Materials Science (NIMS) 1‐1‐1, Kouto, Sayo Hyogo 679–5148 Japan

4. MDX Research Center for Element Strategy International Research Frontiers Initiative Tokyo Institute of Technology 4259 Nagatsuta‐cho, Midori‐ku Yokohama 226–8503 Japan

Abstract

AbstractFerroelectric monoclinic phases have attracted exceptional attention as the origin of giant piezoelectricity, whilst the detailed contributions of ferroelastic domain switching and electric‐field induced lattice strain to the piezoelectric response remain still challenging to clarify. In this work, these contributions to the piezoelectric response are deconvoluted in a (K0.4Na0.6)NbO3 (KNN) film epitaxially grown in monoclinic phase on Nb‐doped SrTiO3, where the as‐deposited film feature (111) and () non‐180° domains. By time‐resolved synchrotron X‐ray diffraction, the ferroelastic domain switching and electric‐field induced lattice strain subjected to an ultrafast electric‐field pulse are quantitatively probed. The switching of ≈4% volume fraction of (111) domains into () ones by a moderate electric field and its response within 30 µs as well are unambiguously unveiled. Interestingly, the contribution of domain switching to the strain is larger than the total strain of the film, which is enabled because of the negative electric‐field‐induced lattice strain. The present study connects macroscopic piezoelectric response in KNN films with the underlying microscopic origins unveiled by separating two contributions, which may provide a knowledge platform that allows for significant achievement of practical lead‐free piezoelectric microelectromechanical and nanoelectromechanical systems in the future.

Funder

Japan Society for the Promotion of Science

National Institute for Materials Science

Japan Science and Technology Agency

Core Research for Evolutional Science and Technology

Precursory Research for Embryonic Science and Technology

Publisher

Wiley

Subject

Electronic, Optical and Magnetic Materials

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