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NC/DEGDN/GO纳米复合材料中氧化石墨烯的相互作用及热学研究

Interaction and thermal studies on graphene oxide in NC/DEGDN/GO nanocomposites.

作者信息

Yahya Prima Kharisma Indra, Moniruzzaman Mohammed, Gill Philip P

机构信息

Centre for Defence Chemistry, Cranfield University, Defence Academy of the UK Shrivenham, Swindon SN6 8LA UK

出版信息

RSC Adv. 2019 Oct 31;9(60):35158-35164. doi: 10.1039/c9ra07717k. eCollection 2019 Oct 28.

Abstract

Before considering the uses of graphene oxide (GO) in nitrate ester-based materials for performance and safety improvement, its interaction, compatibility and dispersion with the host matrices need to be well understood. This work addresses the interaction and dispersity of GO with nitrocellulose (NC)/diethylene glycol dinitrate (DEGDN)-based nanocomposites. The GO and DEGDN were successfully synthesised and characterised. The NC/DEGDN proved to be a good hosting matrix for the dispersion of GO nanosheets. Analysis of atomic force microscopy (AFM) showed that the thicknesses of dispersed GO were in the range of 1-4 nm suggesting that the GO in the nanocomposite consists of 1-2 layers for a 0.5% w/w GO containing nanocomposite and 2-4 layers for a 0.75% w/w nanocomposite. ATR-FTIR spectroscopy analysis established red-shifting of 744 to 752 cm for the O-NO bond stretching vibrations, indicating bond stabilization by donor electron from the GO. The Raman spectra analysis showed GO peaks blue-shifting and broadening which is attributed to hydrogen bonding interaction between GO sheets and -NO groups. The activation energy of nitrate ester decomposition of NC/DEGDN/GO nanocomposites increases as a function of GO content from 167 kJ mol and reaches a maximum of 214 kJ mol for a 0.5% w/w GO loading. This suggests an improvement of the nitrate ester bond stability. These findings open a new direction to the application of GO in nitrate ester-based materials for increased stability, safety and shelf life.

摘要

在考虑将氧化石墨烯(GO)用于硝酸酯基材料以提高性能和安全性之前,需要充分了解其与主体基质的相互作用、相容性和分散性。这项工作研究了GO与硝化纤维素(NC)/二甘醇二硝酸酯(DEGDN)基纳米复合材料的相互作用和分散性。成功合成并表征了GO和DEGDN。事实证明,NC/DEGDN是分散GO纳米片的良好主体基质。原子力显微镜(AFM)分析表明,分散的GO的厚度在1-4nm范围内,这表明对于含0.5%w/w GO的纳米复合材料,纳米复合材料中的GO由1-2层组成,对于含0.75%w/w的纳米复合材料,GO由2-4层组成。ATR-FTIR光谱分析确定O-NO键拉伸振动的峰从744cm红移至752cm,表明来自GO的供体电子使键稳定。拉曼光谱分析表明GO峰发生蓝移和展宽,这归因于GO片层与-NO基团之间的氢键相互作用。NC/DEGDN/GO纳米复合材料中硝酸酯分解的活化能随着GO含量的增加而增加,从167kJ/mol开始,对于0.5%w/w的GO负载量,最高达到214kJ/mol。这表明硝酸酯键稳定性得到了提高。这些发现为GO在硝酸酯基材料中的应用开辟了一个新方向,以提高稳定性、安全性和保质期。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ec0e/9074149/f9bea75c3cae/c9ra07717k-f1.jpg

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