Xu Gui-Bin, Kong Wei-Qing, Liu Chuan-Fu, Sun Run-Cang, Ren Jun-Li
State Key Laboratory of Pulp and Paper Engineering, South China University of Technology, Guangzhou 510640, China.
Beijing Key Laboratory of Lignocellulosic Chemistry, Beijing Forestry University, Beijing 100083, China.
Materials (Basel). 2017 Aug 20;10(8):971. doi: 10.3390/ma10080971.
Recently, more attentions have been focused on the exploration of hemicelluloses in the paper industry. In this work, xylan-grafted-polyacrylamide (xylan-g-PAM) biopolymers were synthesized by the graft copolymerization of xylan with acrylamide, and their interaction with fibers was also investigated to improve waste newspaper pulp properties with or without cationic fiber fines. The influences of synthesis conditions were studied on the grafting ratio and the grafting efficiency of biopolymers. Prepared biopolymers were characterized by FTIR, C NMR, TGA and rheology. It was found that the grafting of PAM on xylan was conductive to improve xylan properties, such as the solubility in water, rheological features, and thermal stability, and the maximum grafting ratio was achieved to 14.7%. Moreover, xylan-g-PAM could obviously enhance the mechanical properties of waste paper pulps. Xylan-g-PAM also played the dominant role in increasing the strength of paper in the combination with prepared cationic fine fibers. When the amounts of xylan-g-PAM and cationic fiber fines were 1.0 wt % and 0.5 wt %, the mechanical properties such as the tensile index was increased by 49.09%, tear index was increased by 36.54%, and the burst index was increased by 20.67%, when compared with the control handsheets. Therefore, xylan-g-PAM as the new biopolymer could be promising in the application of strength agents for the paper industry as well as cationic fiber fines.
近年来,造纸工业中对半纤维素的探索受到了更多关注。在本研究中,通过木聚糖与丙烯酰胺的接枝共聚反应合成了木聚糖接枝聚丙烯酰胺(木聚糖-g-PAM)生物聚合物,并研究了它们与纤维的相互作用,以改善有无阳离子纤维细料情况下废纸浆的性能。研究了合成条件对生物聚合物接枝率和接枝效率的影响。通过傅里叶变换红外光谱(FTIR)、碳核磁共振(C NMR)、热重分析(TGA)和流变学对制备的生物聚合物进行了表征。结果发现,聚丙烯酰胺接枝到木聚糖上有助于改善木聚糖的性能,如在水中的溶解度、流变特性和热稳定性,最大接枝率达到了14.7%。此外,木聚糖-g-PAM能显著提高废纸浆的机械性能。在与制备的阳离子细纤维结合使用时,木聚糖-g-PAM在提高纸张强度方面也起着主导作用。当木聚糖-g-PAM和阳离子纤维细料的用量分别为1.0 wt%和0.5 wt%时,与对照手抄片相比,拉伸指数等机械性能提高了49.09%,撕裂指数提高了36.54%,耐破指数提高了20.67%。因此,木聚糖-g-PAM作为一种新型生物聚合物,在造纸工业中作为增强剂以及与阳离子纤维细料一起应用方面具有广阔前景。