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用于环氧树脂固化的埃洛石纳米管(HNTs)的内外表面改性:化学与动力学建模

In-Out Surface Modification of Halloysite Nanotubes (HNTs) for Cure of Epoxy: Chemistry and Kinetics Modeling.

作者信息

Moghari Shahab, Jafari Seyed Hassan, Yazdi Mohsen Khodadadi, Jouyandeh Maryam, Hejna Aleksander, Zarrintaj Payam, Saeb Mohammad Reza

机构信息

School of Chemical Engineering, College of Engineering, University of Tehran, Tehran 11155-4563, Iran.

Center of Excellence in Electrochemistry, School of Chemistry, College of Science, University of Tehran, Tehran 141746-6191, Iran.

出版信息

Nanomaterials (Basel). 2021 Nov 15;11(11):3078. doi: 10.3390/nano11113078.

Abstract

In-out surface modification of halloysite nanotubes (HNTs) has been successfully performed by taking advantage of 8-hydroxyquinolines in the lumen of HNTs and precisely synthesized aniline oligomers (AO) of different lengths (tri- and pentamer) anchored on the external surface of the HNTs. Several analyses, including FTIR, H-NMR, TGA, UV-visible spectroscopy, and SEM, were used to establish the nature of the HNTs' surface engineering. Nanoparticles were incorporated into epoxy resin at 0.1 wt.% loading for investigation of the contribution of surface chemistry to epoxy cure behavior and kinetics. Nonisothermal differential scanning calorimetry (DSC) data were fed into home-written MATLAB codes, and isoconversional approaches were used to determine the apparent activation energy () as a function of the extent of cure reaction (α). Compared to pristine HNTs, AO-HNTs facilitated the densification of an epoxy network. Pentamer AO-HNTs with longer arms promoted an cure; with an value that was 14% lower in the presence of this additive than for neat epoxy, demonstrating an enhanced cross-linking. The model also predicted a triplet of cure (, , and ln ) for autocatalytic reaction order, non-catalytic reaction order, and pre-exponential factor, respectively, by the Arrhenius equation. The enhanced autocatalytic reaction in AO-HNTs/epoxy was reflected in a significant rise in the value of from 0.11 to 0.28. Kinetic models reliably predict the cure footprint suggested by DSC measurements.

摘要

通过利用埃洛石纳米管(HNTs)内腔中的8-羟基喹啉,并精确合成锚定在HNTs外表面的不同长度(三聚体和五聚体)的苯胺低聚物(AO),成功实现了HNTs的内外表面改性。采用了包括傅里叶变换红外光谱(FTIR)、氢核磁共振(H-NMR)、热重分析(TGA)、紫外可见光谱和扫描电子显微镜(SEM)在内的多种分析方法,以确定HNTs表面工程的性质。将纳米颗粒以0.1 wt.%的负载量掺入环氧树脂中,以研究表面化学对环氧树脂固化行为和动力学的影响。非等温差示扫描量热法(DSC)数据被输入自行编写的MATLAB代码中,并采用等转化率方法确定表观活化能()作为固化反应程度(α)的函数。与原始HNTs相比,AO-HNTs促进了环氧网络的致密化。具有较长臂的五聚体AO-HNTs促进了固化;在这种添加剂存在下,其值比纯环氧树脂低14%,表明交联增强。该模型还分别通过阿伦尼乌斯方程预测了自催化反应级数、非催化反应级数和指前因子的一组固化参数(、和ln)。AO-HNTs/环氧树脂中增强的自催化反应反映在值从0.11显著增加到0.28。动力学模型可靠地预测了DSC测量所表明的固化特征。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0484/8620462/c2d20dec5ac9/nanomaterials-11-03078-g0A1.jpg

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