Ferroelectric Polycrystals: Structural and microstructural levers for property engineering via domain-wall dynamics
arXiv:2208.11368 · doi:10.1016/j.pmatsci.2023.101101
Abstract
Ferroelectrics have a spontaneous electrical polarization that is arranged into domains and can be reversed by an externally applied field. This high versatility makes them useful in enabling components such as capacitors, sensors, and actuators. The key to tuning their dielectric, piezoelectric, and electromechanical performance is to control the domain structure and the dynamics of the domain walls. In fixed compositions, this is often realized by chemical doping. In addition, structural and microstructural parameters, such as grain size, degree of crystallographic texture or porosity play a key role. A major breakthrough in the field came with the fundamental understanding of the link between the local electric and mechanical driving forces and domain wall motion. Here, the impact of structure and microstructure on these driving forces is reviewed and an engineering toolbox is introduced. An overview of advances in the understanding of domain wall motion on the micro- and nanoscale is provided and discussed in terms of the macroscopic functional performance of polycrystalline ferroelectrics/ferroelastics. In addition, a link to theoretical and computational models is established. The review concludes with a discussion about beyond state-of-the-art characterization techniques, new approaches, and future directions toward non-conventionally ordered ferroelectrics for next-generation nanoelectronics and energy-storage applications.
References in corpus (10)
- Enhanced pyroelectric and piezoelectric properties of PZT with aligned porosity for energy harvesting applications
- Hardening-softening transition in Fe-doped Pb(Zr,Ti)O3 ceramics and evolution of the third harmonic of the polarization response
- Understanding the effect of porosity on the polarisation-field response of ferroelectric materials
- Biological applications of ferroelectric materials
- Freeze cast porous barium titanate for enhanced piezoelectric energy harvesting
- Templated Grain Growth in Macroporous Materials
- Conductivity contrast and tunneling charge transport in the vortex-like ferroelectric domain patterns of multiferroic hexagonal YMnO3
- Porous textured ceramics with controlled grain size and orientation
- Insulating improper ferroelectric domain walls as robust barrier layer capacitors
- Stochastic model of dispersive multi-step polarization switching in ferroelectrics due to spatial electric field distribution
Cited by in corpus (5)
- When Energy and Information Revolutions Meet 2D Janus
- Post-synthesis tuning of dielectric constant via ferroelectric domain wall engineering
- Electric field direction dependence of the electrocaloric effect in BaTiO3
- Domain formation and correlation effects in quenched uniaxial ferroelectrics: A stochastic model perspective
- In-situ SHG microscopy investigation of the domain-wall-conductivity enhancement procedure in lithium niobate