Ameliorating the Features of TiN/SiO2 Promising Nanoceramic Doped Optical Polymer for Multifunctional Optoelectronics Applications

IF 2.8 3区 材料科学 Q3 CHEMISTRY, PHYSICAL
Silicon Pub Date : 2025-01-15 DOI:10.1007/s12633-025-03220-y
Ahmed Hashim, Ghaith Ahmed, Hamed Ibrahim, Aseel Hadi
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引用次数: 0

Abstract

The goal of this work is to improve the optical and structural properties of titanium nitride(TiN)- silica(SiO2) promising nanoceramic doped polystyrene (PS) to apply in flexible nanoelectronics and optical fields. The films of (PS-TiN-SiO2) were produced utilizing the casting process. The structure, and optical properties of (PS-TiN-SiO2) nanostructures were examined. The structure characteristics of (PS-TiN-SiO2) nanostructures were tested using FTIR and optical microscope(OM). The OM images confirmed the good dispersion of (TiN-SiO2)NPs throughout the (PS) matrix, whilst the FTIR revealed a physical relationship between the polymer (PS) and the nanoparticles. The optical characteristics were examined at wavelengths (λ = 320-920nm). The study found that when TiN-SiO2 NPs reaching 2.8 wt%, the absorbance increased of 32.8% and transmission decreased of 11.3% at wavelength(360 nm), making them perfect for various optical fields. When TiN-SiO2 NPs concentration reached of 2.8 wt%, the energy gap of PS decreased to 2.53eV and refractive index increased from 2 to 2.24 making (PS-TiN-SiO2) nanostructures ideal for optoelectronics nanodevices. As the concentration of TiN-SiO2 NPs rises, the other optical parameters(absorption coefficient, extinction coefficient, real and imaginary dielectric constants, and optical conductivity) were increased. Finally, the results confirmed that the (PS-TiN-SiO2) nanostructures may be considered as a future nanosystems to exploit in a variety of potential nanoelectronics and optics applications.

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来源期刊
Silicon
Silicon CHEMISTRY, PHYSICAL-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
5.90
自引率
20.60%
发文量
685
审稿时长
>12 weeks
期刊介绍: The journal Silicon is intended to serve all those involved in studying the role of silicon as an enabling element in materials science. There are no restrictions on disciplinary boundaries provided the focus is on silicon-based materials or adds significantly to the understanding of such materials. Accordingly, such contributions are welcome in the areas of inorganic and organic chemistry, physics, biology, engineering, nanoscience, environmental science, electronics and optoelectronics, and modeling and theory. Relevant silicon-based materials include, but are not limited to, semiconductors, polymers, composites, ceramics, glasses, coatings, resins, composites, small molecules, and thin films.
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