PVK/SWCNTs纳米复合材料结构和光致发光性能的实验与计算研究

IF 1.4 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY AIMS Materials Science Pub Date : 2023-01-01 DOI:10.3934/matersci.2023027
B. Zaidi, M. Althobaiti, Nejmeddine Smida
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引用次数: 0

摘要

采用简单的机械分散法制备了单壁碳纳米管(SWCNTs)和聚乙烯咔唑(PVK)聚合物的复合材料。得到的样品在333 K的中等温度下退火,以获得良好的分散性和抑制相分离。利用密度泛函理论计算的力常数与FTIR测量结果相关联,以支持两者之间的相互作用。采用拉曼散射法检测了SWCNTs在PVK聚合物上的分散状态。利用光吸收分析、固定光致发光和时间分辨光致发光技术研究了SWCNTs加入后材料光学性质的变化。当SWCNTS含量增加时,聚合物光致发光的猝灭效应表明,扩展的界面形成了大块纳米异质结,导致电荷对的有效解离。时间分辨光致发光观察到寿命明显减少,这反映了扩散途径的缩短,从而改善了电子转移。
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Experimental and computational investigations of structural and photoluminescence properties of PVK/SWCNTs nanocomposites
A simple mechanical dispersion method was used to elaborate new nanocomposite from the combination of single walled carbon nanotubes (SWCNTs) and polyvinylcarbazole (PVK) polymer. The obtained samples were annealed at the moderate temperature of 333 K to achieve good dispersion and inhibit phase separation. Force constants calculations using Density Functional theory were correlated with FTIR measurements to support the interaction between both components. Raman scattering was used to check the dispersion state of SWCNTs on the PVK polymer. Optical absorption analysis and stationary photoluminescence and time resolved photoluminescence technics have been used to elucidate the change of optical properties after SWCNTs adding. The formation of bulk nano-hetero-junction resulting from the extended interfaces, leading to efficient dissociation of the charge pairs was shown by quenching effects in polymer photoluminescence when increasing SWCNTS contents. A noticeable decrease of the life time is observed by time resolved photoluminescence, which reflects the shortness of diffusion pathways and consequently an improvement of the electron transfer.
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来源期刊
AIMS Materials Science
AIMS Materials Science MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
3.60
自引率
0.00%
发文量
33
审稿时长
4 weeks
期刊介绍: AIMS Materials Science welcomes, but not limited to, the papers from the following topics: · Biological materials · Ceramics · Composite materials · Magnetic materials · Medical implant materials · New properties of materials · Nanoscience and nanotechnology · Polymers · Thin films.
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