Lopes Wilton C, Brito Francisco M, Neto Francisco E, Araújo Alyne R, Leite Rodolpho C, Viana Vicente G Freitas, Silva-Filho Edson C, Silva Durcilene A
Research Center on Biodiversity and Biotechnology, BIOTEC, Federal University of Delta of Parnaíba, UFDPar, São Sebastião Avenue, Parnaíba 64202-020, PI, Brazil.
Postgraduate Program in Materials Engineering, Federal Institute of Piaui (IFPI), Campus Teresina Central, Teresina 64001-270, PI, Brazil.
Polymers (Basel). 2023 May 23;15(11):2412. doi: 10.3390/polym15112412.
The incorporation of polymeric components into aerogels based on clay produces a significant improvement in the physical and thermal properties of the aerogels. In this study, clay-based aerogels were produced from a ball clay by incorporation of angico gum and sodium alginate using a simple, ecologically acceptable mixing method and freeze-drying. The compression test showed a low density of spongy material. In addition, both the compressive strength and the Young's modulus of elasticity of the aerogels showed a progression associated to the decrease in pH. The microstructural characteristics of the aerogels were investigated by X-ray diffraction (XRD) and scanning electron microscopy (SEM). The chemical structure was studied by infrared spectroscopy with Fourier transform (FTIR). The TGA curves from a non-oxidizing atmosphere indicated that the clay had a mass loss of 9% above 500 °C and that due to the presence of polysaccharides, the aerogels presented a decomposition of 20% at temperatures above 260 °C. The DSC curves of the aerogels demonstrated a displacement in higher temperatures. In conclusion, the results showed that aerogels of ball clay with the incorporation of polysaccharides, which are still minimally studied, have potential application as thermal insulation considering the mechanical and thermal results obtained.
将聚合物成分掺入基于粘土的气凝胶中,可显著改善气凝胶的物理和热性能。在本研究中,通过使用简单、生态可接受的混合方法并进行冷冻干燥,将安吉科胶和海藻酸钠掺入球粘土中来制备基于粘土的气凝胶。压缩试验表明海绵状材料密度较低。此外,气凝胶的抗压强度和杨氏弹性模量均呈现出与pH值降低相关的变化趋势。通过X射线衍射(XRD)和扫描电子显微镜(SEM)研究了气凝胶的微观结构特征。通过傅里叶变换红外光谱(FTIR)研究了化学结构。非氧化气氛下的热重分析(TGA)曲线表明,粘土在500℃以上有9%的质量损失,并且由于多糖的存在,气凝胶在260℃以上的温度下有20%的分解。气凝胶的差示扫描量热法(DSC)曲线表明在较高温度下有位移。总之,考虑到所获得的力学和热学结果,结果表明,掺入多糖的球粘土气凝胶(目前研究仍较少)具有作为隔热材料的潜在应用价值。