Enhancement of piezoelectric response based on oxygen vacancy migration behavior in (K, Na)NbO3 crystals
Abstract
Piezoelectric properties of materials are strongly influenced by atomic-scale defects. Proper design and modulation of oxygen vacancy (VO⋅⋅) through external fields are crucial for the comprehensive optimization of piezoelectric materials. In this study, we investigate the effects of poling on VO⋅⋅ in potassium sodium niobate (KNN) crystals, and design corresponding strategies to enhance the piezoelectric performance. We confirm the migration of VO⋅⋅ toward the negative surface under an electric field, which is then retained after the removal of the field, resulting in a VO⋅⋅-rich negative surface. Based on this, we grind away the negative surface to reduce VO⋅⋅ and weaken the shielding effect, significantly improving the small-signal d33 (from 276 to 338 pC/N) and electric field-induced strain performance (from 0.038% to 0.081%). Furthermore, the decreased VO⋅⋅ enhances the switching capability of domains, resulting in an additional transformation of the polarization orientations from [1 1¯ 0] to [1¯ 01], compared to that of the original crystal. These findings contribute to fully exploring the application potential of KNN crystals. The VO⋅⋅-rich surface of poled KNN crystals may offer promising applications in piezoelectric catalysis. Our results provide valuable insights for the modulation of piezoelectric properties.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (10)
Xuejie Sun
School of Physics, Harbin Institute of Technology 1 , Harbin 150001,
Chengpeng Hu
School of Physics, Harbin Institute of Technology 1 , Harbin 150001,
Bohan Xing
School of Physics, Harbin Institute of Technology 1 , Harbin 150001,
Mingxuan Liu
State Key Laboratory of Solidification Processing and School of Materials Science and Engineering
Ming Qiu
Institute of Nanoscience and Nanotechnology, College of Physical Science and Technology
Yu Wang
Peng Tan
Xiangda Meng
School of Physics, Harbin Institute of Technology 1 , Harbin 150001,
Xiaoou Wang
Hao Tian
Shanghai Research Institute of Petrochemical Technology