Oxygen-defective electrostrictors for soft electromechanics

Author:

Tinti Victor Buratto12ORCID,Han Jin Kyu13ORCID,Frederiksen Valdemar4ORCID,Chen Huaiyu5ORCID,Wallentin Jesper5ORCID,Kantor Innokenty46ORCID,Lyksborg-Andersen Anton7,Hansen Thomas Willum7ORCID,Bae Garam8,Song Wooseok89ORCID,Stamate Eugen7ORCID,de Florio Daniel Zanetti2ORCID,Bruus Henrik4ORCID,Esposito Vincenzo1ORCID

Affiliation:

1. Department of Energy Conversion and Storage, Technical University of Denmark, 2800 Kgs. Lyngby, Denmark.

2. Center for Engineering, Modeling and Applied Social Sciences, Federal University of ABC, Santo André 09210-580, SP, Brazil.

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

4. Department of Physics, Technical University of Denmark, 2800 Kgs. Lyngby, Denmark.

5. Synchrotron Radiation Research and NanoLund, Lund University, Box 118, Lund 22100, Sweden.

6. MAX IV Laboratory, Lund University, Lund, Sweden.

7. National Centre for Nano Fabrication and Characterization, Technical University of Denmark, 2800 Kgs. Lyngby, Denmark.

8. Thin Film Materials Research Center, Korea Research Institute of Chemical Technology (KRICT), 141 Gajeong-ro, Yuseong-gu, Daejeon 34114, Republic of Korea.

9. School of Electronic and Electrical Engineering, Sungkyunkwan University, Suwon 16149, Republic of Korea.

Abstract

Electromechanical metal oxides, such as piezoceramics, are often incompatible with soft polymers due to their crystallinity requirements, leading to high processing temperatures. This study explores the potential of ceria-based thin films as electromechanical actuators for flexible electronics. Oxygen-deficient fluorites, like cerium oxide, are centrosymmetric nonpiezoelectric crystalline metal oxides that demonstrate giant electrostriction. These films, deposited at low temperatures, integrate seamlessly with various soft substrates like polyimide and PET. Ceria thin films exhibit remarkable electrostriction ( M 33 > 10 −16 m 2 V −2 ) and inverse pseudo-piezo coefficients ( e 33 > 500 pmV −1 ), enabling large displacements in soft electromechanical systems. Our study explores resonant and off-resonant configurations in the low-frequency regime (<1 kHz), demonstrating versatility for three-dimensional and transparent electronics. This work advances the understanding of oxygen-defective metal oxide electromechanical properties and paves the way for developing versatile and efficient electromechanical systems for applications in biomedical devices, optical devices, and beyond.

Publisher

American Association for the Advancement of Science (AAAS)

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