Zouari I, Dahri A, Sassi Z, Seveyrat L, Abdelmoula N, Khemakhem H
Laboratory of Nanomaterials and Systems for Renewable Energies (LaNSER) LR15CRTEn05, Research and Technology Center of Energy (CRTEn) Techno-Park Borj Cedria, Bp 95, Hammam-Lif Tunis 2050 Tunisia
Laboratory of Multifunctional Materials and Applications (LaMMA), LR16ES18, Faculty of Sciences of Sfax, University of Sfax BP 1171 3000 Sfax Tunisia.
RSC Adv. 2025 Mar 28;15(12):9576-9586. doi: 10.1039/d5ra00245a. eCollection 2025 Mar 21.
For this study, Ba Pr□ (NaBi) TiZrO ( = 0.5%; = 0.05, 0.1 and 0.15) (abbreviated as BZT-Pr-NBT) ceramics were prepared by a solid state reaction method. The samples were structurally characterized by X-ray diffraction (XRD) and the software Fullprof, which showed the atomic positions, bond distances, and bond angles of these materials in the tetragonal structure. The crystallite size, determined by both the Williamson-Hall and Debye-Scherrer methods, increases with increasing NaBiTiO (abbreviated as NBT) content in Ba Pr□ TiZrO ( = 0.5%) (abbreviated as BZT-Pr) ceramic. The ultraviolet-visible (UV-Vis) diffuse reflectance spectrum indicated that the BZT-Pr-NBT ceramics exhibited direct band gap values in the range of 2.90-2.78 eV. Moreover, this study investigates the ferroelectric, energy storage, and pyroelectric energy harvesting properties of BZT-Pr-NBT ceramics with varying NBT contents ( = 0.05, 0.10 and 0.15). The results reveal that NBT substitution significantly influences the ferroelectric characteristics and enhances recoverable energy storage density ( ) and energy storage efficiency (). Temperature-dependent scaling relations for the coercive field ( ) and remnant polarization ( ) were derived for all samples. For BZT-Pr-0.15NBT ceramic, the scaling relation for and ( ∝ , ∝ ) highlights improved thermal stability in this composition. Pyroelectric energy harvesting under the Olsen cycle identified BZT-Pr-0.05NBT as the most efficient composition. These findings emphasize the crucial impact of NBT substitution in optimizing the ferroelectric and pyroelectric properties of BZT-Pr-NBT ceramics.
在本研究中,通过固态反应法制备了BaPr□(NaBi)TiZrO(= 0.5%;= 0.05、0.1和0.15)(简称为BZT-Pr-NBT)陶瓷。采用X射线衍射(XRD)和Fullprof软件对样品进行结构表征,该软件显示了这些材料在四方结构中的原子位置、键距和键角。通过威廉姆森-霍尔法和德拜-谢乐法确定的微晶尺寸,随着BaPr□TiZrO(= 0.5%)(简称为BZT-Pr)陶瓷中NaBiTiO(简称为NBT)含量的增加而增大。紫外-可见(UV-Vis)漫反射光谱表明,BZT-Pr-NBT陶瓷的直接带隙值在2.90 - 2.78 eV范围内。此外,本研究还考察了不同NBT含量(= 0.05、0.10和0.15)的BZT-Pr-NBT陶瓷的铁电、储能和热释电能量收集特性。结果表明,NBT替代显著影响铁电特性,并提高了可恢复储能密度()和储能效率()。推导了所有样品的矫顽场()和剩余极化()的温度相关标度关系。对于BZT-Pr-0.15NBT陶瓷,和(∝,∝)的标度关系突出了该成分中热稳定性的提高。在奥尔森循环下的热释电能量收集确定BZT-Pr-0.05NBT为最有效的成分。这些发现强调了NBT替代对优化BZT-Pr-NBT陶瓷的铁电和热释电性能的关键影响。