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Giant piezoresponse in nanoporous (Ba,Ca)(Ti,Zr)O3 thin film.
Billah, Motasim; Terasawa, Yukana; Masud, Mostafa Kamal; Asahi, Toru; Hegazy, Mohamed Barakat Zakaria; Nagata, Takahiro; Chikyow, Toyohiro; Uesugi, Fumihiko; Hossain, Md Shahriar A; Yamauchi, Yusuke.
Afiliação
  • Billah M; Australian Institute for Bioengineering and Nanotechnology (AIBN), The University of Queensland Brisbane QLD 4072 Australia md.hossain@uq.edu.au y.yamauchi@uq.edu.au.
  • Terasawa Y; School of Mechanical and Mining Engineering, Faculty of Engineering, Architecture and Information Technology (EAIT), The University of Queensland Brisbane QLD 4072 Australia.
  • Masud MK; Kagami Memorial Research Institute for Materials Science and Technology, Waseda University 2-8-26 Nishiwaseda, Shinjuku-ku Tokyo 162-0051 Japan.
  • Asahi T; Faculty of Advanced Science and Technology, Kumamoto University 2-39-1 Chuo-ku, Kurokami, Kumamoto-shi Kumamoto 860-8555 Japan terasawa@cs.kumamoto-u.ac.jp.
  • Hegazy MBZ; Australian Institute for Bioengineering and Nanotechnology (AIBN), The University of Queensland Brisbane QLD 4072 Australia md.hossain@uq.edu.au y.yamauchi@uq.edu.au.
  • Nagata T; Department of Life Science & Medical Bioscience, School of Advanced Science and Engineering, Waseda University 2-2 Wakamatsu-cho, Shinjuku Tokyo 162-8480 Japan.
  • Chikyow T; Department of Chemistry, Faculty of Science, Tanta University Tanta 31527 Egypt.
  • Uesugi F; Research Center for Electronic and Optical Materials, National Institute for Materials Science (NIMS) 1-1 Namiki Tsukuba Ibaraki 305-0044 Japan.
  • Hossain MSA; Center for Basic Research on Materials, National Institute for Materials Science (NIMS) 1-1 Namiki Tsukuba Ibaraki 305-0044 Japan.
  • Yamauchi Y; Research Network and Facility Services Divisioin, National UInstitute for Materials Science (NIMS) 1-2-1 Sengen Tsukuba Ibaraki 305-0047 Japan.
Chem Sci ; 15(24): 9147-9154, 2024 Jun 19.
Article em En | MEDLINE | ID: mdl-38903239
ABSTRACT
Lattice strain effects on the piezoelectric properties of crystalline ferroelectrics have been extensively studied for decades; however, the strain dependence of the piezoelectric properties at nano-level has yet to be investigated. Herein, a new overview of the super-strain of nanoporous polycrystalline ferroelectrics is reported for the first time using a nanoengineered barium calcium zirconium titanate composition (Ba0.85Ca0.15)(Ti0.9Zr0.1)O3 (BCZT). Atomic-level investigations show that the controlled pore wall thickness contributes to highly strained lattice structures that also retain the crystal size at the optimal value (<30 nm), which is the primary contributor to high piezoelectricity. The strain field derived from geometric phase analysis at the atomic level and aberration-corrected high-resolution scanning transmission electron microscopy (STEM) yields of over 30% clearly show theoretical agreement with high piezoelectric properties. The uniqueness of this work is the simplicity of the synthesis; moreover the piezoresponse d 33 becomes giant, at around 7500 pm V-1. This response is an order of magnitude greater than that of lead zirconate titanate (PZT), which is known to be the most successful ferroelectric over the past 50 years. This concept utilizing nanoporous BCZT will be highly useful for a promising high-density electrolyte-free dielectric capacitor and generator for energy harvesting in the future.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article