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Spectroscopic studies, molecular structure optimization and investigation of structural and electrical properties of novel and biodegradable Chitosan-GO polymer nanocomposites

机译:光谱研究,分子结构优化和新型和可生物降解的壳聚糖 - 去聚合物纳米复合材料的结构和电性能研究

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摘要

This article covers the molecular structure optimization and spectroscopic studies, such as Raman, UV-Vis absorption and FTIR, carried out for novel, biodegradable and biocompatible chitosan-graphene oxide (CS-GO) polymer nanocomposites (PNCs), which were synthesized by using simple blending technique followed by ultrasonification treatment. In addition, the structural and electrical properties have also been investigated. Under molecular structure optimization, the structural geometry, electronic structure (HOMO and LUMO) and potential distribution have been computed. X-ray diffraction of PNCs reveals that the crystallized phase of GO dominates over the CS giving modification in crystallite size and presence of micro-strain. FTIR and Raman spectroscopic studies have been carried out to confirm the proper formation of PNCs and presence of functional group in the composites. The surface morphology has been studied with the help of FESEM to confirm proper dispersion of GO sheets. Optical absorption edge and band gap analyzed from UV-Vis analysis reveal the semiconducting nature of PNCs. In addition, the optical band gap is tuned by varying the content of GO in PNCs. This tuning in band gap has also been supported by XRD and computational results. The dielectric constant and dc conductivity are found increased with increasing content of GO in PNCs. Additionally, the I-V characteristics of PNCs shows Ohmic type conduction with rising in current due to incorporation of GO. In view of the results achieved, the usage of CS-GO PNC is suitable for future development of optical and Gas sensors and UV-detectors, and therefore, such composite may be proven as a potential and suitable candidate for the optoelectronic or electrical devices operating at high frequencies.
机译:本文介绍了用于通过使用合成的新型,可生物降解和生物相容性的壳聚糖 - 石墨烯(CS-GO)的含油,紫外 - Vis吸收和FTIR的分子结构优化和光谱研究。简单的混合技术,然后是超声化处理。此外,还研究了结构和电性能。在分子结构优化下,已经计算了结构几何,电子结构(HOMO和LUMO)和电位分布。 PNC的X射线衍射显示,GO的结晶阶段占据CS中的CS,其在微晶尺寸和微菌株存在下进行修饰。已经进行了FTIR和拉曼光谱研究以确认复合材料中的PNC和存在的功能基团的适当形成。在FeSEM的帮助下已经研究了表面形态,以确认去纸张的正确分散。从UV-VIS分析中分析的光学吸收边缘和带隙揭示了PNC的半导体性质。另外,通过改变PNC中的GO的内容来调谐光带隙。 XRD和计算结果也支持这种带隙中的调整。发现介电常数和直流电导率随着PNC的含量增加而增加。另外,PNC的I-V特性显示了由于GO掺入而上升的欧姆类型传导。鉴于实现的结果,CS-GO PNC的使用适用于未来光学和气体传感器和UV检测器的发展,因此,可以证明这种复合材料作为操作的光电或电气设备的潜在和合适的候选者高频。

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  • 来源
    《Journal of Materials Science》 |2020年第30期|共19页
  • 作者单位

    Banasthali Vidyapith Dept Phys Banasthali 304022 Rajasthan India;

    Banasthali Vidyapith Dept Chem Banasthali 304022 Rajasthan India;

    Banasthali Vidyapith Dept Phys Banasthali 304022 Rajasthan India;

    Banasthali Vidyapith Dept Phys Banasthali 304022 Rajasthan India;

    Univ Tecn Federico Santa Maria Dept Quim Av Santa Maria 6400 Santiago 7660251 Chile;

    Univ Kota Dept Pure &

    Appl Phys Kota 324005 Rajasthan India;

    King Faisal Univ Coll Sci Dept Phys POB 400 Al Hufuf 31982 Al Ahsa Saudi Arabia;

    Cumhuriyet Univ Dept Chem Sivas Turkey;

    Univ Rajasthan Dept Phys Jaipur 302004 Rajasthan India;

    Banasthali Vidyapith Dept Phys Banasthali 304022 Rajasthan India;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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