Helal Md Al, Kojima Seiji
Department of Physics, Begum Rokeya University, Rangpur 5400, Bangladesh.
Graduate School of Pure and Applied Sciences, University of Tsukuba, Ibaraki 305-8573, Japan.
Materials (Basel). 2022 Sep 28;15(19):6747. doi: 10.3390/ma15196747.
Perovskite oxides with the general formula ABO comprise a large number of families among the structures of oxide-based materials, and currently, several perovskite structures have been identified. From a variety of compositions and structures, various functions are observed in perovskite compounds, and therefore, they became very useful for various applications in the electronic and medical industries. One of the most puzzling issues for perovskite compounds is the understanding of the vibration and relaxation dynamics in the gigahertz range. In that sense, the micro-Brillouin scattering system is a very effective tool to probe the gigahertz dynamics, and also, first-principles calculations can be used to describe the phonon structure with different atomic contributions. The micro-Brillouin scattering system and first-principles calculations provide the fundamental information on a variety of vibration and relaxation processes related to structural phase transitions under different external conditions such as temperature, electric field, and pressure. This review article summarizes the Brillouin scattering and first-principles studies on BaMO (M = Ti, Zr, and Cu). Through a detailed analysis of the existing results, we summarize the existing limitations and future perspectives in these research areas, which may propel the development of different perovskite ferroelectrics and extend their practical application areas.
通式为ABO的钙钛矿氧化物在氧化物基材料结构中包含大量族系,目前,已确定了几种钙钛矿结构。从各种组成和结构中,在钙钛矿化合物中观察到了各种功能,因此,它们在电子和医疗行业的各种应用中变得非常有用。钙钛矿化合物最令人困惑的问题之一是对千兆赫兹范围内振动和弛豫动力学的理解。从这个意义上说,微布里渊散射系统是探测千兆赫兹动力学的非常有效的工具,而且,第一性原理计算可用于描述具有不同原子贡献的声子结构。微布里渊散射系统和第一性原理计算提供了与不同外部条件(如温度、电场和压力)下结构相变相关的各种振动和弛豫过程的基本信息。这篇综述文章总结了关于BaMO(M = Ti、Zr和Cu)的布里渊散射和第一性原理研究。通过对现有结果的详细分析,我们总结了这些研究领域中现有的局限性和未来前景,这可能推动不同钙钛矿铁电体的发展并扩展其实际应用领域。