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丙烯酸接枝聚丙烯非织造纤维胺化制备阴离子交换剂及其离子交换性能

Preparation of anion exchanger by amination of acrylic acid grafted polypropylene nonwoven fiber and its ion-exchange property.

作者信息

Park Hyun-Ju, Na Choon-Ki

机构信息

Department of Environmental Engineering, Mokpo National University, Jeonnam 534-729, South Korea.

出版信息

J Colloid Interface Sci. 2006 Sep 1;301(1):46-54. doi: 10.1016/j.jcis.2006.05.003. Epub 2006 May 5.

Abstract

To develop the polymeric adsorbent that possess anionic exchangeable function, PP-g-AA-Am fibers were prepared by photoinduced grafting of acrylic acid (AA) onto polypropylene (PP) nonwoven fibers and subsequent conversion of carboxyl group in grafted AA to an amine (Am) group by reaction with diethylene triamine (DETA). The amination of grafted AA increased with increase in the degree of grafting, the reaction time and temperature of the chemical modification process. Catalytic effect of metal chlorides such as AlCl(3) and FeCl(3) on the amination of grafted AA was significant but not essential to lead the amination. FT-IR and solid (13)C NMR data indicate that amine group was introduced into PP-g-AA fiber through amide linkage between grafted AA and DETA. The anion exchange capacity of PP-g-AA-Am fiber increased with increase in the degree of amination, but reached maximum value at about 60% amination of 150% grafted AA. PP-g-AA-Am fiber showed much higher maximum capacity for PO(4)-P and a similar capacity for NO(3)-N compared to commercial anion resins. Furthermore, the PP-g-AA-Am fiber also has adsorption ability for cations because of unaminated residual carboxyl group.

摘要

为了开发具有阴离子交换功能的聚合物吸附剂,通过将丙烯酸(AA)光诱导接枝到聚丙烯(PP)非织造纤维上,随后使接枝的AA中的羧基与二亚乙基三胺(DETA)反应转化为胺(Am)基,制备了PP-g-AA-Am纤维。接枝AA的胺化程度随着接枝度、化学改性过程的反应时间和温度的增加而增加。金属氯化物如AlCl(3)和FeCl(3)对接枝AA的胺化具有显著的催化作用,但不是导致胺化的必要条件。傅里叶变换红外光谱(FT-IR)和固体(13)C核磁共振(NMR)数据表明,胺基通过接枝的AA与DETA之间的酰胺键引入到PP-g-AA纤维中。PP-g-AA-Am纤维的阴离子交换容量随着胺化程度的增加而增加,但在150%接枝AA的胺化率约为60%时达到最大值。与商业阴离子树脂相比,PP-g-AA-Am纤维对PO(4)-P的最大吸附容量更高,对NO(3)-N的吸附容量相似。此外,由于未胺化的残留羧基,PP-g-AA-Am纤维对阳离子也具有吸附能力。

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