SearcharxivSearch

arXiv subjects

Serhii Ivanchenko

Publications and source records attributed to Serhii Ivanchenko.

2 recordsLinked to original sources

Effective Dielectric Response of Dense Ferroelectric Nanocomposites

We measured the temperature dependences of the capacity and dielectric losses of the tape-casted dense ferroelectric composites consisting of 28 vol.% BaTiO3 nanoparticles (average size 24 nm) in the polyvinyl butyral polymer and 35 vol.% BaTiO3 microparticles (0.5-0.7 μm) dispersed in the ethyl-cellulose, as well as the ceramics made from the nanoparticles using the annealing at 1250oC. The composite films were covered with Ag electrodes and the measurements were performed in a wide frequency range. Using the Lichtenecker effective media approximation, we analysed the effective dielectric response of the dense ferroelectric composites. To establish the phase state of the nanoparticles, we analysed the static 137Ba NMR spectra of BaTiO3 nanoparticles in a wide temperature range from 200 to 400 K. Obtained results revealed that the ferroelectric properties of the nanoparticles contribute to the effective dielectric response of the composites in a significantly different way than predicted by the effective media model. This counterintuitive conclusion indicates on the strong crosstalk effects in the dense ferroelectric nanocomposites, which can be very promising for their applications in nanoelectronics and energy storage.

cond-mat.mtrl-sci

Size-Induced High Electrocaloric Response of Dense Ferroelectric Nanocomposites

Analytical results obtained within Landau-Ginzburg-Devonshire approach and effective media models, predict that the synergy of size effects and Vegard stresses can significantly enhance the electrocaloric cooling (up to 7 times) of the BaTiO3 nanoparticles in comparison with a bulk BaTiO3. To compare with the considered effective media models, we measured the capacitance-voltage and current-voltage characteristics of the dense nanocomposites consisting of (28-35) vol.% BaTiO3 nanoparticles incorporated in organic polymers and determined experimentally the effective dielectric permittivity and losses of the composites. Generalizing obtained analytical results, various ferroelectric nanoparticles spontaneously stressed by elastic defects, such as oxygen vacancies or any other elastic dipoles, which create a strong chemical pressure, can cause the giant electrocaloric response of dense ferroelectric nanocomposites. We have shown that the advantages of the studied lead-free dense nanocomposites are the good tunability of electrocaloric cooling temperature due to the size effects in ferroelectric nanoparticles and the easy control of the high electrocaloric cooling by electric fields. This makes the dense ferroelectric nanocomposites promising for cooling of conventional and innovative electronic elements, such as FETs with high-temperature superconductor channels.

physics.app-ph