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Self-Recovery of a Buckling BaTiO 3 Ferroelectric Membrane.

Jiemei LongTingjun WangCongbing TanJing ChenYu ZhouYingzhuo LunYi ZhangXiangli ZhongYiwei WuHongjia SongXiaoping OuyangJia-Wang HongJinbin Wang
Published in: ACS applied materials & interfaces (2023)
The characteristic of self-recovery holds significant implications for upholding performance stability within flexible electronic devices following the release of mechanical deformation. Herein, the dynamics of self-recovery in a buckling inorganic membrane is studied via in situ scanning probe microscopy technology. The experimental results demonstrate that the ultimate deformation ratio of the buckling BaTiO 3 ferroelectric membrane is up to 88%, which is much higher than that of the buckling SrTiO 3 dielectric membrane (49%). Combined with piezoresponse force microscopy and phase-field simulations, we find that ferroelectric domain transformation accompanies the whole process of buckling and self-recovery of the ferroelectric membrane, i.e., the presence of the nano- c domain not only releases part of the elastic energy of the membrane but also reduces the interface mismatch of the a / c domain, which encourages the buckling ferroelectric membrane to have excellent self-recovery properties. It is conceivable that the evolution of ferroelectric domains will play a greater role in the regulation of the mechanical properties of ferroelectric membranes and flexible devices.
Keyphrases
  • single molecule
  • high throughput
  • mass spectrometry
  • molecular dynamics
  • single cell
  • monte carlo
  • water soluble