Trifonova Yordanka, Stoilova Ani, Dimov Deyan, Mateev Georgi, Nazarova Dimana, Nedelchev Lian, Ivanova Vladislava, Lilova Vanya
Department of Physics, University of Chemical Technology and Metallurgy, 8 Kl. Ohridski Blvd., 1756 Sofia, Bulgaria.
Institute of Optical Materials and Technologies, Bulgarian Academy of Sciences, Acad. Georgi Bonchev Bl. 109, 1113 Sofia, Bulgaria.
Materials (Basel). 2025 Jul 18;18(14):3387. doi: 10.3390/ma18143387.
New bulk chalcogenides from the system (GeTe)Cu, where x = 5, 10, 15 and 20 mol%, have been synthesized. The structure and composition of the materials were studied using X-ray powder diffraction (XRD) and energy-dispersive spectroscopy (EDS). Scanning electron microscopy (SEM) was applied to analyze the surface morphology of the samples. Some thermal characteristics such as the glass transition, crystallization and melting temperature and some physico-chemical properties such as the density, compactness and molar and free volumes were also determined. The XRD patterns show sharp diffraction peaks, indicating that the synthesized new bulk materials are crystalline. The following four crystal phases were determined: Te, Cu, CuTe and CuGeTe. The results from the EDS confirmed the presence of Ge, Te and Cu in the bulk samples in concentrations in good correspondence with those theoretically determined. A layered thin-film material based on GeTeCu, which exhibits lower network compactness compared to the other synthesized new chalcogenides, and the azo polymer PAZO was fabricated, and the kinetics of the photoinduced birefringence at 444 nm was measured. The results indicated an increase in the maximal induced birefringence for the layered structure in comparison to the non-doped azo polymer film.
已合成了体系(GeTe)Cu中x = 5、10、15和20摩尔%的新型块状硫族化物。使用X射线粉末衍射(XRD)和能量色散光谱(EDS)研究了材料的结构和组成。应用扫描电子显微镜(SEM)分析了样品的表面形态。还测定了一些热特性,如玻璃化转变温度、结晶温度和熔化温度,以及一些物理化学性质,如密度、致密性、摩尔体积和自由体积。XRD图谱显示出尖锐的衍射峰,表明合成的新型块状材料是晶体。确定了以下四个晶相:Te、Cu、CuTe和CuGeTe。EDS结果证实了块状样品中Ge、Te和Cu的存在,其浓度与理论测定值吻合良好。制备了一种基于GeTeCu的层状薄膜材料,与其他合成的新型硫族化物相比,该材料表现出较低的网络致密性,并制备了偶氮聚合物PAZO,并测量了444 nm处光致双折射的动力学。结果表明,与未掺杂的偶氮聚合物薄膜相比,层状结构的最大诱导双折射有所增加。