Materials and Environment, Faculty of Civil Engineering and Geosciences, Delft University of Technology, Stevinweg 1, 2628 CN Delft, The Netherlands.
Advanced Soft Matter, Department of Chemical Engineering, Faculty of Applied Sciences, Delft University of Technology, Van der Maasweg 9, 2629HZ Delft, The Netherlands.
Carbohydr Polym. 2016 Oct 20;151:144-149. doi: 10.1016/j.carbpol.2016.05.055. Epub 2016 May 18.
Here we report on a study of a rheological behavior of sodium alginate and montmorillonite suspension. We find that viscoelastic behavior of this suspension is dramatically affected with increasing volume fraction of montmorillonite platelets. Addition of montmorillonite generally leads to gel formation, which is attributed to interactions of montmorillonite and alginate via H-bonding and attraction between the positive edges of the platelets and the anionic backbone of the biopolymer. A critical concentration for the measured system was observed at 20wt.% montmorillonite, where a crossover to a gel-like structure was detected. The observed gel has a rubber plateau, which develops further with higher montmorillonite concentration. In this physical gel the relaxation maximum was detected, which is associated with the breaking and reformation of the bonds between the platelets and the biopolymer. For this transient behavior, we find that a Maxwell type viscoelasticity quite well describes the relaxation time and the observed G'-G" crossover. We believe that this gel-like behavior plays an important role in formation of highly ordered nanostructures that develop during the drying of these bio-nanocomposite suspensions.
我们在此报告了一项关于海藻酸钠和蒙脱石悬浮液流变行为的研究。我们发现,随着蒙脱石片层体积分数的增加,这种悬浮液的粘弹性行为会受到显著影响。蒙脱石的添加通常会导致凝胶的形成,这归因于蒙脱石与海藻酸钠之间通过氢键的相互作用以及片层的正边缘与生物聚合物的阴离子主链之间的吸引力。在 20wt.%的蒙脱石时,观察到测量体系的临界浓度,在此处检测到凝胶状结构的转变。观察到的凝胶具有橡胶平台,随着蒙脱石浓度的增加,其进一步发展。在这种物理凝胶中,检测到松弛最大值,这与片层和生物聚合物之间的键的断裂和重新形成有关。对于这种瞬态行为,我们发现麦克斯韦型粘弹性很好地描述了松弛时间和观察到的 G'-G"交叉。我们认为,这种凝胶状行为在这些生物纳米复合材料悬浮液干燥过程中形成高度有序的纳米结构中起着重要作用。