English
新闻公告
More
化学进展 2009, Vol. 21 Issue (10): 2188-2198 前一篇   后一篇

• 综述与评论 •

“双亲性”嵌段共聚物胶束形貌调控的研究*

梅爱雄;杨雍;徐君庭;杜滨阳**   

  1. (浙江大学高分子科学与工程学系 高分子合成与功能构造教育部重点实验室 杭州 310027)
  • 收稿日期:2008-10-16 出版日期:2009-10-24 发布日期:2009-10-09
  • 通讯作者: 杜滨阳 E-mail:duby@zju.edu.cn
  • 基金资助:

    国家自然科学基金

The Morphological Study of Amphiphilic Block Copolymer Micelles

Mei Aixiong; Yang Yong; Xu Junting; Du Binyang**   

  1. (Key Laboratory of Macromolecular Synthesis and Functionalization, Ministry of Education, Department of Polymer Science & Engineering, Zhejiang University, Hangzhou 310027, China)
  • Received:2008-10-16 Online:2009-10-24 Published:2009-10-09
  • Contact: Du Binyang E-mail:duby@zju.edu.cn
  • Supported by:

    National Natural Science Foundation of China

本文综述了“双亲性”嵌段共聚物在选择性溶剂中胶束行为和胶束形貌的主要影响因素,包括溶液温度、选择性溶剂种类、嵌段长度、链段结晶、链段与溶剂间氢键作用以及共聚物浓度对胶束最终形貌产生影响的因素;系统介绍了对嵌段共聚物胶束形貌进行调控的实验方法;在此同时介绍了对环境刺激如温度和pH变化等具有响应性能的“双亲性”嵌段共聚物在选择性溶剂中胶束行为研究的最新进展;最后提出了该研究领域目前存在的问题和今后的可能发展方向。

In this paper, the main factors which may influence the micelle morphology and behavior of amphiphilic block copolymers in selective solvents are reviewed. These factors mainly include the solution temperature, the type of selective solvents, the lengths of blocks, the crystalline block, the hydrogen-bond interaction between the blocks and the solvent as well as the concentration of the block copolymers. The experimental methods for controlling the micelle morphology of amphiphilic block copolymers in selective solvents are then summarized. The recent advances in the micellar behaviors of a special type of amphiphilic block copolymers in selective solvents, which are capable to response to the external stimuli such as the environmental temperature and pH value, were also presented. Finally, the existing problems and future possible development directions of this research field are discussed.

Contents
1 Introduction
2 Micellar morphologies of “amphiphilic” block copolymer in selective solvent and their influenced factors
2.1 Temperature
2.2 Copolymer concentration
2.3 Solvent
2.4 Block length
2.5 Hydrogen bond
2.6 Crystallization
2.7 Cooperative effect of several factors
3 Micellar behavior of stimulus-responsive block copolymers
4 Existing problems and prospects

中图分类号: 

()

[ 1 ]  Vosloo J J , Tonge M P , Gilbert R G, et al . Macromolecules , 2004 ,37 (7) : 2371 —2382
[ 2 ]  Bernard J , Favier A , Stenzel M H , et al . Macromolecules , 2005 ,38 (13) : 5475 —5484
[ 3 ]  Wang Z M, He J P , Yang YL , et al . Macromolecules , 2003 , 36(20) : 7446 —7452
[ 4 ]  Moad G, Mayadunne R TA , Rizzardo E , et al . Macromol . Symp. ,2003 , 192 (1) : 1 —12
[ 5 ]  Yin D H , Horiuchi S , Masuoka T. Chem. Mater. , 2005 , 17 :463 —469
[ 6 ]  He J B , Tangirala R , Emrick T, et al . Advanced Materials , 2007 ,19 : 381 —385
[ 7 ]  Zschech D , Kim D H , Milenin A P , et al . Nano Technology , 2006 ,17 : 2122 —2126
[ 8 ]  Lin Y, Boker A , He J B , et al . Nature , 2005 , 434 : 55 —59
[ 9 ]  Zhang Q L , Xu T, Butterfield D , et al . Nano Letters , 2005 , 5 :357 —361
[10 ]  Torchilin V P. J . Controlled Release , 2001 , 73 : 137 —172
[11 ]  Li ZB , Kesselman E , Talmon Y, et al . Science , 2004 , 306 : 98 —101
[12 ]  Kubowicz S , Baussard J F , Lutz J F , et al . Chem. Int . Ed. , 2005 ,44 : 5262 —5265
[13 ]  Kubowicz S , Thünemann A F , Weberskirch R , et al . Langmuir ,2005 , 21 : 7214 —7219
[14 ]  Lodge T P , Hillmyer M A , Zhou Z L. Macromolecules , 2004 , 37 :6680 —6682
[15 ]  Zhou ZL , Li ZB , Ren Y, et al . J . Am. Chem. Soc. , 2003 , 125 :10182 —10183
[16 ]  Rodriguez-Hernandez J , Checot F , Gnanou Y, et al . Prog. Polym.Sci . , 2005 , 30 : 691 —724
[17 ]  Alarcon C D H , Pennadam S , Alexander C. Chem. Soc. Rev. ,2005 , 34 : 276 —285
[18 ]  Tuzar Z, Kratochvil P. Adv. Colloid Interface Sci . , 1985 , 105 :2372 —2377
[19 ]  Hamley I W. The Physics of Block Copolymers. England : Oxford Universtity Press , 1998. 25 —29
[20 ]  Tuzar Z. Surface and Colloid Science. NY: Plenum Press , 1993.15 —15
[21 ]  Halperin A , Tirrell M, Lodge T P. Adv. Polym. Sci . , 1992 , 100 :31 —71
[22 ]  Chocair A , Eisenberg A. Eur. Phys. J . E , 2003 , 10 : 37 —44
[23 ]  Gast A P , Vinson P K, Cogan-Farinas KA. Macromolecules , 1993 ,26 : 1774 —1776
[24 ]  Zhulina E B , Adam M, Rubinstein M, et al . Macromolecules ,2005 , 38 : 5330 —5351
[25 ]  Gao Z S , Varshney S K, Eisenberg A , et al . Macromolecules ,1994 , 27 : 7923 —7927
[26 ]  LaRue I , Adam M, Sheiko S S , et al . Macromolecules , 2006 , 39 :309 —314
[27 ]  LaRue I , Adam M, Sheiko S S , et al . Macromolecules , 2004 , 37 :5002 —5005
[28 ]  Mortensen K, Brown W. Macromolecules , 1993 , 26 : 4128 —4135
[29 ]  Convertine A J , Lokitz B S , McCormick C L , et al .Macromolecules , 2006 , 39 : 1724 —1730
[30 ]  Minatti E , Viville P , Borsali R , et al . Macromolecules , 2003 , 36 :4125 —4133
[31 ]  Tung P H , Kuo SW, Chen S C , et al . Polymer , 2007 , 48 : 3192 —3200
[32 ]  Won Y Y, Davis H T, Bates F S. Science , 1999 , 283 : 960 —963
[33 ]  Zhang WQ , Shi L Q , Wu K, et al . Macromolecules , 2005 , 38 :5743 —5747
[34 ]  Yu Y S , Zhang L F , Eisenberg A. Macromolecules , 1998 , 31 :1144 —1154
[35 ]  Du H B , Zhu J T, Jiang W. J . Phys. Chem. B , 2007 , 111 :1938 —1945
[36 ]  Yu Y S , Eisenberg A. J . Am. Chem. Soc. , 1997 , 119 : 8383 —8384
[37 ]  Jada A , Hurtrez G, Siffert B , et al . Macromol . Chem. Phys. ,1996 , 197 : 3697 —3710
[38 ]  Seo Y S , Kim M W, Peifferd D G, et al . Polymer , 2002 , 43 :5629 —5638
[39 ]  Dewalt L E , Ou-Yang H D , Dimonie V L. J . Appl . Polym. Sci . ,1995 , 58 (2) : 265 —269
[40 ]  Shen H W, Eisenberg A. J . Phys. Chem. B , 1999 , 103 : 9473 —9487
[41 ]  Mao M, Turner S R. J . Am. Chem. Soc. , 2007 , 129 : 3832 —3833
[42 ]  Shen H W, Zhang L F , Eisenberg A. J . Am. Chem. Soc. , 1999 ,121 : 2728 —2740
[43 ]  Halperin A. Macromolecules , 1987 , 20 : 2943 —2946
[44 ]  Forster S , Antonietti M. Adv. Mater. , 1998 , 10 : 195 —217
[45 ]  Zhu J T, Yu H Z, Jiang W. Macromolecules , 2005 , 38 : 7492 —7501
[46 ]  Massey J A , Temple K, Cao L , et al . J . Am. Chem. Soc. , 2000 ,122 : 11577 —11584
[47 ]  Vilgis T, Halperin A. Macromolecules , 1991 , 24 : 2090 —2095
[48 ]  Du Z X, Xu J T, Fan Z Q. Macromolecules , 2007 , 40 : 7633 —7637
[49 ]  Du Z X, Xu J T, Fan ZQ. Macromol . Rapid Commun. , 2008 , 29 :467 —471
[50 ]  Zhou Y M, Jiang K Q , Liu S Y, et al . Langmuir , 2007 , 23 :13076 —13084
[51 ]  Schilli CM, Zhang M F , Rizzardo E , et al . Macromolecules , 2004 ,37 : 7861 —7866

[1] 黄倩文, 张晓文, 李密, 吴晓燕, 袁立永. 功能性纤维状二氧化硅纳米粒子的调控制备及在吸附分离中的应用[J]. 化学进展, 2020, 32(2/3): 230-238.
[2] 吕维扬, 孙继安, 姚玉元, 杜淼, 郑强. 层状双金属氢氧化物的控制合成及其在水处理中的应用[J]. 化学进展, 2020, 32(12): 2049-2063.
[3] 牛娜, 李志英, 高婷婷, 刘玉东, 刘晓丽, 刘凤岐*. 疏水缔合水凝胶[J]. 化学进展, 2017, 29(7): 757-765.
[4] 刘亚杰, 张鹏, 杜建委, 王幽香. 微纳米粒子的形貌调控及其对药物/基因传递体系的影响[J]. 化学进展, 2016, 28(1): 67-74.
[5] 杨洁心, 刘雷, 徐君庭. 嵌段共聚物结晶性胶束[J]. 化学进展, 2014, 26(11): 1811-1820.
[6] 王璐璐, 黄海瑛, 何天白. 嵌段共聚物溶液自组装制备纳米管状聚集体[J]. 化学进展, 2014, 26(05): 810-819.
[7] 赵学艳, 郑利强, 曹桂荣, 肖瑞杰. 离子液体参与构建的胶束[J]. 化学进展, 2012, 24(05): 686-695.
[8] 赵剑曦, 谢丹华. 阴离子蠕虫胶束[J]. 化学进展, 2012, 24(04): 456-462.
[9] 何文, 丁元菊, 鲁在君, 杨其峰. 两亲嵌段共聚物胶束用作医用材料[J]. 化学进展, 2011, 23(5): 930-940.
[10] 张晓晖, 艾长军, 马敬红, 徐坚. “Schizophrenic”嵌段共聚物多重胶束化的研究[J]. 化学进展, 2011, 23(4): 781-790.
[11] 罗时忠, 韩梦成, 曹月辉, 凌从祥. 温度响应性单分子聚合物胶束[J]. 化学进展, 2011, 23(12): 2541-2549.
[12] 杨正龙, 周丹, 陈秋云. RAFT聚合法制备聚合物胶束及其应用前景[J]. 化学进展, 2011, 23(11): 2360-2367.
[13] 张永民, 郭赞如, 张继超, 冯玉军, 王碧清, 王九霞. 智能型蠕虫状胶束体系[J]. 化学进展, 2011, 23(10): 2012-2020.
[14] 吴同浩, 王仲妮. 生物表面活性剂胆汁盐胶束化及相行为[J]. 化学进展, 2011, 23(01): 80-89.
[15] 杨奇志, 刘佳, 蒋序林. 点击化学在生物医用高分子中的应用[J]. 化学进展, 2010, 22(12): 2377-2387.