Poznan University of Technology, Faculty of Chemical Technology, Institute of Chemical Technology and Engineering, Berdychowo 4, PL-60965 Poznan, Poland.
Poznan University of Technology, Faculty of Civil and Environmental Engineering, Institute of Structural Engineering, Piotrowo 5, PL-60965 Poznan, Poland.
Molecules. 2019 Sep 30;24(19):3544. doi: 10.3390/molecules24193544.
In this study, a technology for obtaining functional inorganic-organic hybrid materials was designed using waste polymers of natural origin, i.e., kraft lignin and magnesium lignosulfonate, and alumina as an inorganic component. AlO-lignin and AlO-lignosulfonate systems were prepared by a mechanical method using a mortar grinder and a planetary ball mill, which made it possible to obtain products of adequate homogeneity in an efficient manner. This was confirmed by the use of Fourier transform infrared spectroscopy and thermogravimetric analysis. In the next step, the developed hybrid materials were used as functional admixtures in cement mixtures, thus contributing to the formation of a modern, sustainable building material. How the original components and hybrid materials affected the mechanical properties of the resulting mortars was investigated. The admixture of biopolymers, especially lignin, led to cement composites characterized by greater plasticity, while alumina improved their strength properties. It was confirmed that the system containing 0.5 wt.% of alumina-lignin material is the most suitable for application as a cement mortar admixture.
在这项研究中,设计了一种使用天然来源的废聚合物,即牛皮纸木质素和镁木质素磺酸盐以及氧化铝作为无机成分来获得功能无机-有机杂化材料的技术。使用研钵和行星球磨机通过机械方法制备了 AlO-木质素和 AlO-木质素磺酸盐体系,这使得可以有效地获得足够均匀的产物。这一点通过傅里叶变换红外光谱和热重分析得到了证实。在下一步中,开发的杂化材料被用作水泥混合物中的功能性外加剂,从而有助于形成现代可持续建筑材料。研究了原始成分和杂化材料如何影响所得砂浆的机械性能。生物聚合物,特别是木质素的添加导致水泥复合材料具有更大的塑性,而氧化铝则改善了其强度性能。证实含有 0.5wt.%氧化铝-木质素材料的体系最适合用作水泥砂浆外加剂。