TY - JOUR
T1 - Enhanced Electromechanical Response in 1D Hybrid Perovskites
T2 - Coexistence of Normal and Relaxor Ferroelectric Phases
AU - Xue, Chen
AU - Fujibayashi, Masaru
AU - Huang, Hengming
AU - Kato, Chisato
AU - Ichihashi, Katsuya
AU - Manabe, Jun
AU - Nishihara, Sadafumi
AU - Ren, Xiao Ming
AU - Nakamura, Takayoshi
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2025
Y1 - 2025
N2 - Organic hybrid perovskites with polarization reversal are the emergent ferroelectric materials, lacking the connection between the domain-wall (DW) dynamics and the intrinsic microscopic polarization reversal. The polarization reversal experimentally and theoretically is investigated for normal and relaxor ferroelectrics coexisted in one-dimensional (1D) TMAPbI3 (tetramethylammonium, TMA). Depolarization effects induce distinct DW dynamics in normal and relaxor ferroelectrics, leading to deviations in energy barriers between DW velocity models and theoretical predictions. In this research, it is found that the electric field-induced electromechanical response in relaxor ferroelectric raised by 124 times of d33 from 0.29 pC N−1 @ 0 kV cm−1 to 37.17 pC N−1 @ 2 kV cm−1, which is 9 times higher than the value in normal ferroelectrics, implies an excellent electromechanical property in the relaxor ferroelectric. Phonon dispersions identify the soft ferroelectric mode, in which the asymmetric iodine displacements destroy the symmetry plane, ascribing the polarization reversal along the nonpolar axis and the strain- and field-enhanced electromechanical response in the relaxor ferroelectric. Through this research, the connection between the microscopic atomic motion, the macroscopic polarization reversal, and the depolarization effect is revealed, validating methods that are needed to develop the next generation of relaxor ferroelectrics.
AB - Organic hybrid perovskites with polarization reversal are the emergent ferroelectric materials, lacking the connection between the domain-wall (DW) dynamics and the intrinsic microscopic polarization reversal. The polarization reversal experimentally and theoretically is investigated for normal and relaxor ferroelectrics coexisted in one-dimensional (1D) TMAPbI3 (tetramethylammonium, TMA). Depolarization effects induce distinct DW dynamics in normal and relaxor ferroelectrics, leading to deviations in energy barriers between DW velocity models and theoretical predictions. In this research, it is found that the electric field-induced electromechanical response in relaxor ferroelectric raised by 124 times of d33 from 0.29 pC N−1 @ 0 kV cm−1 to 37.17 pC N−1 @ 2 kV cm−1, which is 9 times higher than the value in normal ferroelectrics, implies an excellent electromechanical property in the relaxor ferroelectric. Phonon dispersions identify the soft ferroelectric mode, in which the asymmetric iodine displacements destroy the symmetry plane, ascribing the polarization reversal along the nonpolar axis and the strain- and field-enhanced electromechanical response in the relaxor ferroelectric. Through this research, the connection between the microscopic atomic motion, the macroscopic polarization reversal, and the depolarization effect is revealed, validating methods that are needed to develop the next generation of relaxor ferroelectrics.
KW - 1D hybrid perovskite
KW - domain wall dynamics
KW - normal ferroelectric
KW - polarization reversal
KW - relaxor ferroelectric
UR - http://www.scopus.com/inward/record.url?scp=105000824258&partnerID=8YFLogxK
U2 - 10.1002/adfm.202501299
DO - 10.1002/adfm.202501299
M3 - 文章
AN - SCOPUS:105000824258
SN - 1616-301X
JO - Advanced Functional Materials
JF - Advanced Functional Materials
ER -