h内对甲苯的吸收基本饱和;而采用悬浮聚合所制备的高吸油树脂,对甲苯和三氯甲烷的饱和吸油率分别为11.26、24.18g/g,12h吸油达到饱和;喷雾干燥及悬浮聚合制备的树脂与水的接触角分别为111.14与85.39°,表面能分别为38.10与42.85mJ/m2,采用喷雾干燥制备的高吸油树脂中空微球表现出较好的疏水性.
参考文献
[1] | 张文林,邵拥军.高吸油树脂的性能及应用[J].陕西化工,1998(02):12-13,36. |
[2] | Huang J H;Huang K L;Liu S Q et al.[J].Journal of Colloid and Interface Science,2008,317:434-441. |
[3] | 陈晓婷,唐旭东,张明珠,姜成立.丙烯酸酯类吸油树脂的合成与性能研究[J].离子交换与吸附,2005(06):536-541. |
[4] | 李建颖.高吸水与高吸油性树脂[M].北京:化学工业出版社,2005:7-8. |
[5] | 马光辉;苏志国.高分子微球材料[M].北京:化学工业出版社,2005:63-68. |
[6] | Alloue W A M;Destain J;Amighi K et al.[J].Process Biochemistry,2007,42:1357-1361. |
[7] | Shabde VS;Hoo KA .Design and operation of a spray dryer for the manufacture of hollow microparticles[J].Industrial & Engineering Chemistry Research,2006(25):8329-8337. |
[8] | Elversson J;Millqvist Fureby A .Particle size and density in spray drying-effects of carbohydrate properties.[J].Journal of Pharmaceutical Sciences,2005(9):2049-2060. |
[9] | Wang A J;Lu Y P;Sun R X .[J].Materials Science and Engineering A:Structural Mat,2007,460-461:1-6. |
[10] | Hadinoto K;Phanapavudhikul P;Zhu K W et al.[J].Int J Pharm Pharmaceutical Nanotechnology,2007,333:187-198. |
[11] | Hadinoto K;Zhu K;Tan RB .Drug release study of large hollow nanoparticulate aggregates carrier particles for pulmonary delivery.[J].International Journal of Pharmaceutics,2007(1/2):195-206. |
[12] | Okuyama K K;Lenggoro I W .[J].Chemical Engineering Science,2003,58:537-547. |
[13] | Hong S H;Kim B K .[J].Materials Letters,2003,57:2761-2767. |
[14] | 王晖,顾帼华,邱冠周.接触角法测量高分子材料的表面能[J].中南大学学报(自然科学版),2006(05):942-947. |
[15] | Feng L;Li S;Li Y et al.[J].Advanced Materials,2002,24:1857-1860. |
[16] | Neinhuis C;Barthlott W .Characterization and distribution of water-repellent, self-cleaning plant surfaces.[J].Annals of Botany,1997(6):667-677. |
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