Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/7597
Title: Structural, dielectric and ferroelectric studies of thermally stable and efficient energy storage ceramic materials: (Na0.5-xKxBi0.5-xLax)TiO3
Authors: Verma, Anita
Kumar, Sunil
Sen, Somaditya
Keywords: Bismuth compounds;Ceramic materials;Crystal structure;Digital storage;Energy storage;Ferroelectricity;Phase transitions;Potassium compounds;Rietveld refinement;Scanning electron microscopy;Sodium compounds;Sol-gel process;Sol-gels;Storage (materials);Thermodynamic stability;Titanium oxides;Dielectric and ferroelectric properties;Energy dispersive X-ray spectrometry;Field emission scanning electron microscopes;Lead-Free;Octahedral tilt;Paraelectric phase transition;Site disorder;Synchrotron x ray diffraction;Ferroelectric materials
Issue Date: 2018
Publisher: Elsevier Ltd
Citation: Verma, A., Yadav, A. K., Khatun, N., Kumar, S., Jangir, R., Srihari, V., . . . Sen, S. (2018). Structural, dielectric and ferroelectric studies of thermally stable and efficient energy storage ceramic materials: (Na0.5-xKxBi0.5-xLax)TiO3. Ceramics International, 44(16), 20178-20186. doi:10.1016/j.ceramint.2018.07.312
Abstract: The structural, dielectric and ferroelectric properties of lead-free (Na0.5-xKxBi0.5-xLax)TiO3 (0 ≤ x ≤ 0.12) powders synthesized by modified sol-gel method was investigated. Rietveld refinement of synchrotron x-ray diffraction data confirms single phase rhombohedral crystal structure with R3c space group for all the compositions and anti-phase (a-a-a-) octahedral tilting angle decreased with increase in composition. Homogeneity and elemental proportions were confirmed by Energy dispersive x-ray spectrometry. The temperature-dependent dielectric study has shown two diffuse type of dielectric anomaly for all the samples, due to A-site disorder in the lattice, which has been assigned to two-phase transitions: ferroelectric to anti-ferroelectric and anti-ferroelectric to the paraelectric phase transition. Thermal stability range of dielectric constant increases from ~100 to 220 °C as a function of composition. Stable dielectric constant first increases from 1557 ± 10% for x = 0 compositions and highest for x = 0.06 sample with εmid ~ 2508 ± 10% of the temperature range ~180–340 °C, and after that decreases to 1608 ± 10% for x = 0.12, but remain higher than the x = 0 composition. Ferroelectric measurements have shown monotonously decreasing coercive field as a function of the composition due to decrease in the average grain size, confirmed by microstructural studies using field emission scanning electron microscope. An exponential increase in the energy storage efficiency from ~ 17% to 87% as a function of composition have also observed. These types of materials, with the high stable dielectric constant (εr) and low loss (tanδ), have a vast scope in the field of the thermally stable dielectric constant materials and energy storage applications. © 2018
URI: https://doi.org/10.1016/j.ceramint.2018.07.312
https://dspace.iiti.ac.in/handle/123456789/7597
ISSN: 0272-8842
Type of Material: Journal Article
Appears in Collections:Department of Metallurgical Engineering and Materials Sciences

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