Aziz Shujahadeen B
Advanced Polymeric Materials Research Laboratory, Department of Physics, College of Science, University of Sulaimani, Sulaimani 46001, Kurdistan Regional Government, Iraq.
Komar Research Center (KRC), Komar University of Science and Technology, Sulaimani 46001, Kurdistan Regional Government, Iraq.
Nanomaterials (Basel). 2017 Dec 13;7(12):444. doi: 10.3390/nano7120444.
In this work, copper (Cu) nanoparticles with observable surface plasmonic resonance (SPR) peaks were synthesized by an in-situ method. Chitosan host polymer was used as a reduction medium and a capping agent for the Cu nanoparticles. The surface morphology of the samples was investigated through the use of scanning electron micrograph (SEM) technique. Copper nanoparticles appeared as chains and white specks in the SEM images. The strong peaks due to the Cu element observed in the spectrum of energy dispersive analysis of X-rays. For the nanocomposite samples, obvious peaks due to the SPR phenomena were obtained in the Ultraviolet-visible (UV-vis) spectra. The effect of Cu nanoparticles on the host band gap was understood from absorption edges shifting of absorption edges to lower photon energy. The optical dielectric loss parameter obtained from the measurable quantities was used as an alternative method to study the band structure of the samples. Quantum mechanical models drawbacks, in the study of band gap, were explained based on the optical dielectric loss. A clear dispersion region was able to be observed in refractive indices spectra of the composite samples. A linear relationship with a regression value of 0.99 was achieved between the refractive index and volume fractions of CuI content. Cu nanoparticles with various sizes and homogenous dispersions were also determined from transmission electron microscope (TEM) images.
在本工作中,通过原位法合成了具有可观察到的表面等离子体共振(SPR)峰的铜(Cu)纳米颗粒。壳聚糖主体聚合物用作铜纳米颗粒的还原介质和封端剂。通过扫描电子显微镜(SEM)技术研究了样品的表面形态。在SEM图像中,铜纳米颗粒呈现为链状和白色斑点。在X射线能量色散分析谱中观察到了归因于铜元素的强峰。对于纳米复合材料样品,在紫外可见(UV-vis)光谱中获得了归因于SPR现象的明显峰。从吸收边向较低光子能量的移动理解了铜纳米颗粒对主体带隙的影响。从可测量量获得的光学介电损耗参数被用作研究样品能带结构的替代方法。基于光学介电损耗解释了量子力学模型在带隙研究中的缺点。在复合样品的折射率光谱中能够观察到清晰的色散区域。在折射率与CuI含量的体积分数之间实现了回归值为0.99的线性关系。还从透射电子显微镜(TEM)图像确定了具有各种尺寸和均匀分散的铜纳米颗粒。