Mervat I. Mohammed, Heba Y. Zahran, Samer H. Zyoud, Moyad Shahwan, Cihat Aydin, Ibrahim S. Yahia, Doaa Abdelhameed
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引用次数: 0
Abstract
Herein, this study introduces a simple, effective, and potentially successful approach to the preparation of polymeric composite systems using a Polyvinyl alcohol (PVA)-Polyvinyl pyrrolidone (PVP)-Polyethylene glycol (PEG) (PVA-PVP-PEG), (8:1:1) as the host polymeric blend with the inclusion of Tb(NO3)3-salt filler. The diffraction of X-rays (XRD), infrared spectroscopic (FTIR), Ultraviolet–visible (UV–vis) spectroscopy, and Phy-X/PSD software were utilized to analyze the modified samples’ structures, identify their optical and radiation shielding properties. The XRD patterns show the presence of Tb(NO3)3 phases inside the composite matrix, where adding filler causes modifications in the polymeric network’s structure for filled composite samples. FTIR analysis showed that the Tb(NO3)3-salt interacted with the blend’s functional groups via H-bond formation. The UV–Vis spectra analysis showed all samples, especially those loaded with 8.0 wt.% Tb(NO3)3-salt has the highest values for absorbance, dielectric constant, refractive index, extinction coefficient, and optical and electrical conductivity. Tauc’s formula, the ASF model, and " \({\varepsilon }_{i}-hv\) plots were all applied to investigate optically the band gap in great detail. The values of \({\text{E}}_{\text{d}}\) and \({\text{E}}_{\text{o}}\) and \({\text{n}}_{\text{o}}\) have been investigated using a single oscillator model where their values were controlled by Tb(NO3)3- salt content. Using calculated gap energy, various approaches were applied to obtain the conceptual significance of the linear refractive index \((n)\). The nonlinear optical parameters \({\upchi }^{(1)}\), \({\upchi }^{(3)}\), and \({\text{n}}_{2}\) increased noticeably as the Tb(NO3)3-salt percentage is increased to 8.0 wt%. The suggested largely doped Tb(NO3)3-salt composites show great promise as a CUT-OFF laser filters and attenuators in addition to being used in laser power-limiting technology. Based on our results, the sample was 8.0 wt.% Tb(NO3)3-salt has better gamma-ray shielding properties than the others because it has the largest Tb(NO3)3-salt concentration. The study opens a new route to fabricate Tb(NO3)3/(PVA-PVP-PEG) polymeric composites with superior optical properties.
在此,本研究介绍了一种简单、有效且可能成功的方法,以聚乙烯醇(PVA)-聚乙烯吡咯烷酮(PVP)-聚乙二醇(PEG) (PVA-PVP-PEG)(8:1:1)为主体聚合物共混物,包合Tb(NO3)3-盐填料,制备聚合物复合体系。利用x射线衍射(XRD)、红外光谱(FTIR)、紫外可见光谱(UV-vis)和Phy-X/PSD软件对改性后样品的结构进行分析,鉴定其光学和辐射屏蔽性能。XRD谱图表明,复合材料基体内部存在Tb(NO3)3相,其中填料的加入使填充后的复合材料样品的聚合物网络结构发生改变。FTIR分析表明,Tb(NO3)3盐与共混物官能团通过氢键形成相互作用。紫外可见光谱分析显示,所有样品,特别是负载8.0 wt的样品。% Tb(NO3)3-salt has the highest values for absorbance, dielectric constant, refractive index, extinction coefficient, and optical and electrical conductivity. Tauc’s formula, the ASF model, and " \({\varepsilon }_{i}-hv\) plots were all applied to investigate optically the band gap in great detail. The values of \({\text{E}}_{\text{d}}\) and \({\text{E}}_{\text{o}}\) and \({\text{n}}_{\text{o}}\) have been investigated using a single oscillator model where their values were controlled by Tb(NO3)3- salt content. Using calculated gap energy, various approaches were applied to obtain the conceptual significance of the linear refractive index \((n)\). The nonlinear optical parameters \({\upchi }^{(1)}\), \({\upchi }^{(3)}\), and \({\text{n}}_{2}\) increased noticeably as the Tb(NO3)3-salt percentage is increased to 8.0 wt%. The suggested largely doped Tb(NO3)3-salt composites show great promise as a CUT-OFF laser filters and attenuators in addition to being used in laser power-limiting technology. Based on our results, the sample was 8.0 wt.% Tb(NO3)3-salt has better gamma-ray shielding properties than the others because it has the largest Tb(NO3)3-salt concentration. The study opens a new route to fabricate Tb(NO3)3/(PVA-PVP-PEG) polymeric composites with superior optical properties.
期刊介绍:
Journal of Polymer Research provides a forum for the prompt publication of articles concerning the fundamental and applied research of polymers. Its great feature lies in the diversity of content which it encompasses, drawing together results from all aspects of polymer science and technology.
As polymer research is rapidly growing around the globe, the aim of this journal is to establish itself as a significant information tool not only for the international polymer researchers in academia but also for those working in industry. The scope of the journal covers a wide range of the highly interdisciplinary field of polymer science and technology, including:
polymer synthesis;
polymer reactions;
polymerization kinetics;
polymer physics;
morphology;
structure-property relationships;
polymer analysis and characterization;
physical and mechanical properties;
electrical and optical properties;
polymer processing and rheology;
application of polymers;
supramolecular science of polymers;
polymer composites.