AI Article Synopsis

  • This study explored how the size of BaTiO ceramics affects their piezoelectric properties using molecular dynamics simulations, confirming thermal and potential energy equilibrium at 300 K within 10 ns.
  • As the ceramic size increased, both the mean square displacement and diffusion coefficients decreased, indicating a more uniform microstructure with reduced ion mobility due to fewer defects.
  • The findings revealed that larger BaTiO samples showed enhanced polarization values, while the increased stress from better domain alignment limited the mobility of the domain walls, emphasizing the importance of size and microstructure in optimizing ferroelectric materials for electronic applications.

Article Abstract

This study investigated the piezoelectric properties of BaTiO ceramics with different sizes through molecular dynamics simulations. The results show that all samples reached thermal equilibrium at 300 K and equilibrium in potential energy within 10 ns, confirming effective equilibration. As the size of the ceramics increased, the mean square displacement and diffusion coefficients decreased from 0.217 and 0.0034 to 0.1934 Å and 0.003 Å/ns, attributed to a more uniform microstructure with fewer defects, resulting in reduced ion mobility. Furthermore, saturation polarization, residual polarization, and coercive field values increased from 0.35, 0.1, and 0.175 to 0.42 C/m, 0.16 C/m, and 0.282 MV/m, respectively, with increasing sample size, highlighting enhanced polarization responses due to a greater volume of ferroelectric material. Larger barium titanate (BaTiO) crystals can have better polarization due to more domains aligning, but they may not deform as much (lower strain) because the walls among those domains can't move freely. While improved domain alignment contributed to higher polarization, the increased stress can restrict the mobility of the domain walls. These findings provided valuable insights into the size-dependent behavior of BaTiO ceramics, essential for optimizing their applications in electronic devices and sensors. The study underscored the importance of understanding microstructural effects on material properties for future advancements in ferroelectric technology.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11569122PMC
http://dx.doi.org/10.1038/s41598-024-79941-8DOI Listing

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