Saha Manish, Niranjan Manish K, Asthana Saket
Theoretical Nanoscience Group, Department of Physics, Indian Institute of Technology Hyderabad, Kandi, Telangana 502284, India.
Advanced Functional Materials Laboratory, Department of Physics, Indian Institute of Technology Hyderabad, Kandi, Telangana 502284, India.
J Phys Condens Matter. 2024 Jul 22;36(42). doi: 10.1088/1361-648X/ad61aa.
The KNaNbO(KNN) system has emerged as one of the most promising lead-free piezoelectric over the years. In this work, we perform a comprehensive investigation of electronic structure, lattice dynamics and dielectric properties of room temperature phase of KNN by combiningDFT based theoretical analysis and experimental characterization. We assign the symmetry labels to KNN vibrational modes and obtainpolarized Raman spectra, Infrared reflectivity, Born-effective charge tensors, oscillator strengths etc. The KNN ceramic samples are prepared using conventional solid-state method and Raman and UV-Vis diffuse reflectance spectra are obtained. The computed Raman spectrum is found to agree well with the experimental spectrum. In particular, the results suggest that the mode in range ∼840-870 cmreported in the experimental studies is longitudinal optical withA1symmetry. The Raman mode intensities are calculated for different light polarization set-ups that suggests the observation of different symmetry modes in different polarization set-ups. The electronic structure of KNN is investigated and optical absorption spectrum is obtained. Further, the performances of DFT semi-local, meta-GGA and hybrid exchange-correlations functionals, in the estimation of KNN band gaps are investigated. The KNN bandgap computed using GGA-1/2 and HSE06 hybrid functional schemes are found to be in excellent agreement with the experimental value. The COHP, electron localization function and Bader charge analysis is also performed to deduce the nature of chemical bonding in the KNN. Overall, our study provides several bench-mark important results on KNN that have not been reported so far.
多年来,铌酸钾钠(KNN)体系已成为最具潜力的无铅压电材料之一。在本工作中,我们结合基于密度泛函理论(DFT)的理论分析和实验表征,对KNN室温相的电子结构、晶格动力学和介电性能进行了全面研究。我们为KNN振动模式指定了对称标签,并获得了极化拉曼光谱、红外反射率、玻恩有效电荷张量、振子强度等。使用传统固态方法制备了KNN陶瓷样品,并获得了拉曼光谱和紫外-可见漫反射光谱。计算得到的拉曼光谱与实验光谱吻合良好。特别地,结果表明实验研究中报道的~840 - 870 cm范围内的模式是具有A1对称性的纵向光学模式。计算了不同光偏振设置下的拉曼模式强度,这表明在不同偏振设置下可以观察到不同对称模式。研究了KNN的电子结构并获得了光吸收光谱。此外,研究了DFT半局域、meta-GGA和杂化交换关联泛函在估计KNN带隙方面的性能。发现使用GGA-1/2和HSE06杂化泛函方案计算得到的KNN带隙与实验值非常吻合。还进行了晶体轨道哈密顿布居(COHP)、电子定域函数和巴德电荷分析,以推断KNN中的化学键性质。总体而言,我们的研究提供了一些迄今为止尚未报道的关于KNN的重要基准结果。