从热稳定性表征有机-无机杂化材料的界面键合

Anders M. Schade , Sascha Louring , Morten M. Smedskjaer , Donghong Yu
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引用次数: 0

摘要

结合有机和无机成分的透明混合材料提供了获得传统材料所没有的特性的可能性,例如同时具有高韧性和高强度。有机相和无机相之间的共价键对溶胶-凝胶基杂化材料的性能和稳定性至关重要,而这反过来又可以通过偶联剂来实现。然而,由于偶联剂中的反应基团与有机组分中的反应基团相似,杂化物中化学偶联的量化具有挑战性。研究杂化材料的热稳定性为评估化学偶联提供了另一种选择,因为当聚合物与稳定的无机实体(如二氧化硅)共价结合时,通常会表现出增强的热稳定性。在这项研究中,我们评估了基于四乙基硅酸盐(TEOS),聚乙二醇200 (PEG200)和(3-甘油三酯氧基丙基)-三甲氧基硅烷(GPTMS)的溶胶-凝胶杂化材料的热稳定性。采用热重分析(TGA)和傅里叶变换红外光谱(FTIR)对材料进行分析,以确定偶联剂GPTMS促进聚合物和二氧化硅网络之间界面共价键的程度。TGA结果表明,随着GPTMS含量的增加,PEG200的热稳定性有系统的提高,根据FTIR结果,这是由于PEG200与二氧化硅网络的共价键。我们发现,当GPTMS、TEOS和PEG200的摩尔比为1:1:1时,PEG200的热稳定性得到了最大的提高,其中36.8%的有机物在更高的温度下分解。这些发现证明了混合材料的化学结构与其热性能之间的联系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterising the interfacial bonding in organic-inorganic hybrid materials from their thermal stability
Transparent hybrid materials that combine organic and inorganic components offer the possibility to obtain properties not found in conventional materials, such as simultaneous high toughness and high strength. Covalent bonding between the organic and inorganic phases is crucial to the performance and stability of sol-gel-based hybrid materials, which in turn can be achieved by using coupling agents. However, quantifying chemical coupling in hybrids is challenging due to the similarity between the reactive groups in the coupling agent and those in the organic components. Investigating the thermal stability of hybrid materials offers an alternative to assess chemical coupling, as polymers typically exhibit enhanced thermal stability when covalently bonded to stable inorganic entities such as silica. In this study, we evaluate the thermal stability of sol-gel hybrid materials based on tetraethylorthosilicate (TEOS), polyethylene glycol 200 (PEG200), and (3-Glycidyloxypropyl)-trimethoxysilane (GPTMS). The materials were analysed using thermogravimetric analysis (TGA) and Fourier transform infrared spectroscopy (FTIR) to determine the extent of interfacial covalent bonding between the polymer and silica networks as facilitated by the coupling agent GPTMS. The TGA results indicate a systematic increase in thermal stability with increasing GPTMS content, which is due to the covalent bonding of PEG200 to the silica network according to the FTIR results. We find that a 1:1:1 molar ratio of GPTMS, TEOS, and PEG200 yields the highest thermal stability enhancement for PEG200, where 36.8% of the organics decompose at a higher temperature compared to the native organic species. These findings demonstrate the link between the chemical structure of hybrid materials and their thermal properties as characterised using TGA.
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