首页> 外文会议>223rd American Chemical Society Meeting; 2002; Orlando, Fla. >Interaction between Cellulose and Xylan: An Atomic Force Microscope and Quartz Crystal Microbalance Study
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Interaction between Cellulose and Xylan: An Atomic Force Microscope and Quartz Crystal Microbalance Study

机译:纤维素和木聚糖之间的相互作用:原子力显微镜和石英晶体微天平的研究

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The atomic force microscope (AFM) colloidal probe technique has been used to investigate forces between cellulose beads as well as cellulose beads and mica in aqueous solution, and the interaction between cellulose surfaces in xylan solutions. Several observations of the behaviour of the cellulose beads were made. Swelling of the beads in aqueous solutions is rather slow. Thus, it is important to let the beads equilibrate before measurements. The beads are somewhat compressed when forced together to constant compliance, but relax back to their original shape in a few minutes. A long-range electrostatic repulsion between cellulose and mica occurs on approach. The xylan concentration in solution affects the forces between two cellulose surfaces. When the concentration increases from 10-100 mg/l more xylan adsorbs slowly and irreversibly on the cellulose leading to an increasingly long-range and stronger repulsion between the surfaces on approach. Adhesion between the layers is very low and seems to be due to entanglement of polymer chains. Studies of the adsorption of xylan (100 mg/1) on cellulose films with a quartz crystal microbalance with dissipation (QCM-D) verify that a thick, water-swollen layer of xylan is formed by slow adsorption. It has been proposed that adsorbed xylan on fibre surfaces increases paper strength. We conclude that this must be associated with the behaviour of the adsorbed layers of xylan on drying.
机译:原子力显微镜(AFM)胶体探针技术已用于研究纤维素珠以及纤维素珠和云母在水溶液中的作用力以及木聚糖溶液中纤维素表面之间的相互作用。观察到了纤维素珠的行为。珠在水溶液中的溶胀相当缓慢。因此,重要的是在测量之前使珠子平衡。将小珠压在一起以保持恒定的柔顺度时,它们会有些压缩,但几分钟后会恢复到原始形状。接近时,纤维素和云母之间会发生远距离静电排斥。溶液中的木聚糖浓度影响两个纤维素表面之间的力。当浓度从10-100 mg / l增加时,更多的木聚糖会缓慢且不可逆地吸附在纤维素上,从而导致进近时表面之间的距离越来越远,排斥力越来越强。层之间的粘合力非常低,似乎是由于聚合物链的缠结所致。对木聚糖(100 mg / 1)在具有消散性的石英晶体微天平(QCM-D)的纤维素膜上的吸附研究证明,缓慢的吸附会形成厚而水溶的木聚糖层。已经提出,在纤维表面上吸附的木聚糖可以提高纸的强度。我们得出结论,这必须与干燥时木聚糖吸附层的行为有关。

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