Thermal Stability and Non-Linear Optical and Dielectric Properties of Lead-Free K0.5Bi0.5TiO3 Ceramics

Author:

Czaja Piotr1ORCID,Szostak Elżbieta2ORCID,Hetmańczyk Joanna2ORCID,Zachariasz Piotr3ORCID,Majda Dorota2,Suchanicz Jan4ORCID,Karolus Małgorzata5ORCID,Bochenek Dariusz5ORCID,Osińska Katarzyna5,Jędryka Jarosław6,Kityk Andriy6,Piasecki Michał7ORCID

Affiliation:

1. Institute of Technology, University of the National Education Commission, Podchorążych 2, 30-084 Krakow, Poland

2. Faculty of Chemistry, Jagiellonian University, Gronostajowa 2, 30-387 Krakow, Poland

3. Center for Hybrid Microelectronics and LTCC, Łukasiewicz Research Network—Institute of Microelectronics and Photonics, Zabłocie 39, 30-701 Krakow, Poland

4. Department of Mechanical Engineering and Agrophysics, University of Agriculture in Krakow, Balicka 120, 31-120 Krakow, Poland

5. Faculty of Science and Technology, Institute of Materials Engineering, University of Silesia in Katowice, 75 Pułku Piechoty 1a, 41-500 Chorzow, Poland

6. Faculty of Electrical Engineering, Czestochowa University of Technology, Armii Krajowej 17, 42-201 Czestochowa, Poland

7. Institute of Physics, Jan Dlugosz University, Armii Krajowej 13/15, 42-200 Czestochowa, Poland

Abstract

Lead-free K0.5Bi0.5TiO3 (KBT) ceramics with high density (~5.36 g/cm3, 90% of X-ray density) and compositional purity (up to 90%) were synthesized using a solid-state reaction method. Strongly condensed KBT ceramics revealed homogenous local microstructures. TG/DSC (Thermogravimetry-differential scanning calorimetry) techniques characterized the thermal and structural stability of KBT. High mass stability (>0.4%) has proven no KBT thermal decomposition or other phase precipitation up to 1000 °C except for the co-existing K2Ti6O13 impurity. A strong influence of crystallites size and sintering conditions on improved dielectric and non-linear optical properties was reported. A significant increase (more than twice) in dielectric permittivity (εR), substantial for potential applications, was found in the KBT-24h specimen with extensive milling time. Moreover, it was observed that the second harmonic generation (λSHG = 532 nm) was activated at remarkably low fundamental beam intensity. Finally, spectroscopic experiments (Fourier transform Raman and far-infrared spectroscopy (FT-IR)) were supported by DFT (Density functional theory) calculations with a 2 × 2 × 2 supercell (P42mc symmetry and C4v point group). Moreover, the energy band gap was calculated (Eg = 2.46 eV), and a strong hybridization of the O-2p and Ti-3d orbitals at Eg explained the nature of band-gap transition (Γ → Γ).

Funder

European Regional Development Fund under the Innovative Economy Operational Programme

University of the National Education Commission

National Science Centre

National Natural Science Foundation of China

European Union in the framework of the Smart Growth Operational Programme, Measure 4.2

Publisher

MDPI AG

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