中文
Announcement
More
Progress in Chemistry 2008, Vol. 20 Issue (12): 1980-1986 Previous Articles   Next Articles

• Review •

Amphiphilic Dendritic Polymer

Su Jing; Zhang Ling**; Wu Qing**

  

  1. ( Institute of Polymer Science, Sun Yat-Sen University, Guangzhou 510275, China)
  • Received: Revised: Online: Published:
  • Contact: Zhang Ling; Wu Qing
PDF ( 2949 ) Cited
Export

EndNote

Ris

BibTeX

Recently, the research of dendritic polymers and their functionalization is one of the most considerable interest in the field of polymer science. The review deals with different dendritic polymers which are polyesters, polyglycerol, polyethylenimine hyperbranched polymers, poly(amidoamine), poly(propyleneimine) dendrimers. Amphiphilic dendritic polymers have been prepared via hydrophobic (hydrophilic) modification of a large number of reactive terminal groups of those dendritic polymers,and the methods of modification include amidation, esterification, Michael addition reaction and so on. Different from those dendritic polymers prepared via polycondensation, dendritic polyethylene have been obtained by “chain-walking” mechanism of coordination polymerization, which has attracted increasing attention. In this regard, amphiphilic dendritic polyethylene have been synthesized by copolymerizing ethylene with a comonomer or by tandem chain walking polymerization and atom transfer radical polymerization. Furthermore, the possible topics of amphiphilic dendritic polymer in the future investigation are discussed.

CLC Number: 

[1 ] Newkome G R , Moorefield C N , Baker G R , Saunders M J ,Grossman S H. Angew. Chem. Int . Ed. Engl . , 1991 , 30 :1178 —1180
[2 ] Tomalia D A. PolymJ . , 1985 , 17 : 117 —132
[3 ] Flory P J . J . Am. Chem. Soc. , 1952 , 74 : 2718 —2723
[4 ] Kim Y H , Webster O W. Macromolecules , 1992 , 25 : 5561 —5572
[5 ] Hawker C J , Lee R , Frechet J MJ . J . Am. Chem. Soc. , 1991 ,113 : 4583 —4588
[6 ] Ornataka M, Peleshanko S , Rybak B , Holzmueller J , Tsukuk V V. Adv.Mater. , 2004 , 16 : 2206 —2209
[7 ] Luo S Z, Xu J , Zhu Z Y, Wu C , Liu S Y. J . Phys. Chem. B ,2006 , 110 : 9132 —9139
[8 ] Zou J H , Zhao YB , Shi W F. J . Phys. Chem. B , 2006 , 110 :2638 —2642
[9 ] Zhao Y H , Zhu B K, Kong L , Xu Y Y. Langmuir , 2007 , 23 :5779 —5786
[10] Kreutzer G, Ternat C , Nguyen TQ , Plummer C J G, M? nson J AE , Castelletto V , Hamley I W, Sun F , Sheiko S S , Herrmann A ,Ouali L , Sommer H , Fieber W, Velazco M I , Klok H A.Macromolecules , 2006 , 39 : 4507 —4516
[11] Zhai X, Peleshanko S , Klimenko N S , Genson K L, Vaknin D ,Vortman M Y, Shevchenko V V , Tsukruk V V. Macromolecules ,2003 , 36 : 3101 —3110
[12] Sunder A , Hanselmann H , Frey H , Mulhaupt R. Macromolecules , 1999 , 32 : 4240 —4246
[13] Sunder A , Kramer M, Hanselmann R , Mlhaupt R , Frey H.Angew. Chem. , 1999 , 111 : 3758 —3761
[14] Haag R , Stumbé J F , Sunder A , Frey H , Hebel A. Macromolecules , 2000 , 33 : 8158 —8166
[15] Slagt M Q , Stiriba S E , Gebbink R J M K, Kautz H , Frey H ,Koten G V. Macromolecules , 2002 , 35 : 5734 —5737
[16] Slagt M Q , Stiriba S E , Kautz H , Gebbink R J M K, Frey H , van Koten G. Organometallics , 2004 , 23 : 1525 —1532
[17] Pfau A , Schrepp W, Horn D. Langmuir , 1999 , 15 : 3219 —3225
[18] Antonietti L , Aymonier C , Schlotterbeck U , Garamus V M,Maksimova T, Richtering W, Mecking S. Macromolecules , 2005 ,38 : 5914 —5920
[19] Maksimova T, Richtering W, Antonietti L , Mecking S. Macromolecules , 2004 , 37 : 7893 —7900
[20] Yan D Y, Gao C. Macromolecules , 2000 , 33 :7693 —7699
[21] Gao C , Yan D Y, Zhang B , Chen W. Langmuir , 2002 , 18 :3708 —3713
[22] Liu C H , Gao C , Yan D Y. Macromolecules , 2006 , 39 : 8102 —8111
[23] Mai Y Y, Zhou Y F , Yan D Y. Macromolecules , 2005 , 38 :8679 —8686
[24] Zhou Y F , Yan D Y, Dong W Y, Tian Y. J . Phys. Chem. B. ,2007 , 111 : 1262 —1270
[25] Mao J , Ni P H , Mai Y Y, Yan D Y. Langmuir , 2007 , 23 :5127 —5134
[26] Kitajyo Y, Kinugawa Y, Tamaki M, Kaga H , Kaneko N , Satoh T, Kakuchi T. Macromolecules , 2007 , 40 : 9313 —9321
[27] Peleshanko R , Gunawidjaja R , Petrash S , Tsukruk V V.Macromolecules , 2006 , 39 : 4756 —4766
[28] Tomalia D A , Naylor A M, Goddard W A. Angew. Chem. Int .Ed. Engl . , 1990 , 29 : 138 —175
[29] Tomalia D A , Baker H , Dewald J , Hall M, Kallos G, Martin S ,Roeck J , Ryder J , Smith P. Polym. J . , 1985 , 17 : 117 —132
[30] Ghosh S K, Kawaguchi S , Jinbo YJ , Izumi Y, Yamaguchi K,Taniguchi T, Nagai K, Koyama K. Macromolecules , 2003 , 36 :9162 —9169
[31] Zhang D H , Hamiltan P D , Kao J L F , Venkataraman S , Wooley K L , Ravi N. J . Polym. Sci . Part A: Polym. Chem. , 2007 ,45 : 2569 —2575
[32] Schmitzer A , Perez E , Rico-Lattes L , Lattes A , Rosca S.Langmuir , 1999 , 15 : 4397 —4403
[33] Kojima C , Kono K, Maruyama K, Takagishi T. Bioconj . Chem. ,2000 , 11 : 910 —917
[34] Hu Y, Joseph J M, Stephanie T L. Journal of Colloid and Interface Science , 2004 , 273 : 148 —154
[35] Hedden R C , Bauer B J . Macromolecules , 2003 , 36 : 1829 —1835
[36] Wang F , Bronich T K, Kabanov A V , Rauh D , Roovers J .Bioconjugate Chem. , 2005 , 16 : 397 —405
[37] Van den Berg E M M B , Meijer E W. Angew. Chem. , 1993 ,105 : 1370 —1372
[38] Stevelmans S , van Hest J C M, Jansen J F GA , van Boxtel D A F J , van den Berg EMMB , Meijer EM. J . Am. Chem. Soc. ,1996 , 118 : 7398 —7399
[39] Pan Y J , Ford W T. Macromolecules , 1999 , 32 : 5468 —5470
[40] Schenning A P H J , Peeters E , Meijer E W. J . Am. Chem.Soc. , 2000 , 122 : 4489 —4495
[41] Su A H , Tan S S , Thapa P , Flanders B N , Ford W T. J . Phys.Chem. C , 2007 , 111 : 4695 —4701
[42] Cho S Y, Allcock H R. Macromolecules. 2007 , 40 : 3115 —3121
[43] Cardullo F , Diedrich F , Echegoyen L , et al . Langmuir , 1998 ,14 : 1955 —1959
[44] Lorenz K, Frey H , Stuhn B , Mulhaupt R. Macromolecules ,1997 , 30 : 6860 —6868
[45] Atanasov V , Sinigersky V , Klapper M, Müllen K.Macromolecules , 2005 , 38 : 1672 —1683
[46] Yin M, Bauer R , Klapper M, Müllen K. Macromol . Chem.Phys. , 2007 , 208 : 1646 —1656
[47] Johnson L K, Killian C M, Brookhart M. J . Am. Chem. Soc. ,1995 , 117 : 6414 —6415
[48] Johnson L K, Mecking S , Brookhart M. J . Am. Chem. Soc. ,1996 , 118 : 267 —268
[49] Mohring V M, Fink G. Angew. Chem. Int . Ed. Engl . , 1985 ,24 : 1001 —1003
[50] Tempel D J , Johnson L K, Huff R L , White P S , Brookhart M.J . Am. Chem. Soc. , 2000 , 122 : 6686 —6700
[51] Shultz L H , Tempel D J , Brookhart M. J . Am. Chem. Soc. ,2001 , 123 : 11539 —11555
[52] 刘丰收(Liu F S) , 伍青(Wu Q) . 石油化工( Petrochemical Technology) , 2006 , 35 : 303 —309
[53] Guan Z B , Cotts P M, McCord E F , McLain S J . Science. ,1999 , 283 : 2059 —2062
[54] Cotts P M, Guan Z B , McCord E F , McLain S J .Macromolecules , 2000 , 33 : 6945 —6952
[55] Chen G H , Ma X S , Guan Z B. J . Am. Chem. Soc. , 2003 ,125 : 6697 —6704
[56] Wang J L , Zhang K J , Ye Z B. Macromolecules , 2008 , 41 :2290 —2293
[57] Chen G H , Guan Z B. J . Am. Chem. Soc. , 2004 , 126 :2662 —2663
[58] Chen G H , Huynh D , Felgner P L , Guan Z B. J . Am. Chem.Soc. , 2006 , 128 : 4298 —4302

[1] Zhang Huidi, Li Zijie, Shi Weiqun. The Stability Enhancement of Covalent Organic Frameworks and Their Applications in Radionuclide Separation [J]. Progress in Chemistry, 2023, 35(3): 475-495.
[2] Bai Wenji, Shi Yubing, Mu Weihua, Li Jiangping, Yu Jiawei. Computational Study on Cs2CO3-Assisted Palladium-Catalyzed X—H(X=C,O,N, B) Functionalization Reactions [J]. Progress in Chemistry, 2022, 34(10): 2283-2301.
[3] Xi Chen, Zheyao Li, Yayun Chen, Zhihua Chen, Yan Hu, Chuanxiang Liu. C—H Cyanoalkylation:the Direct C—H Cyanomethylation of Naphthalimide [J]. Progress in Chemistry, 2021, 33(11): 1947-1952.
[4] Qianwen Huang, Xiaowen Zhang, Mi Li, Xiaoyan Wu, Liyong Yuan. Preparation of Functional Fibrous Silica Nanoparticles and Their Applications in Adsorption and Separation [J]. Progress in Chemistry, 2020, 32(2/3): 230-238.
[5] Qiang Zhang, Wenjun Huang, Yanbin Wang, Xingjian Li, Yiheng Zhang. Functionalization of Polyurethane Based on Copper-Catalyzed Azide-Alkyne Cycloaddition Reaction [J]. Progress in Chemistry, 2020, 32(2/3): 147-161.
[6] Jiangbo Liu, Lihua Wang, Xiaolei Zuo. Cell Membranes Functionalization Based on DNA [J]. Progress in Chemistry, 2019, 31(8): 1067-1074.
[7] Yuanming Tan, Hao Meng, Xia Zhang. Removal of Organic Dyes and Heavy Metal Ions by Functionalized MOFs and MOFs/Polymer Composite Membranes [J]. Progress in Chemistry, 2019, 31(7): 980-995.
[8] Aobo Geng, Qiang Zhong, Changtong Mei, Linjie Wang, Lijie Xu, Lu Gan. Applications of Wet-Functionalized Graphene in Rubber Composites [J]. Progress in Chemistry, 2019, 31(5): 738-751.
[9] Zhao Li, Lin Yu, Zhen Zheng, Xinling Wang*. Functionalization of High-Strength Hydrogels with Regular Network Structures [J]. Progress in Chemistry, 2017, 29(7): 706-719.
[10] Yijun Lin, Yunlong Zhu, Guichao Kuang, Guipeng Yu*, Riguang Jin. Application of Porous Organic Polymers in the Radioactive Iodine Adsorption [J]. Progress in Chemistry, 2017, 29(7): 766-775.
[11] Xiaopeng Zhang*, Shuxiang Dong, Xuesen Fan, Guisheng Zhang. Synthesis of o-Aminobenzamide Compounds [J]. Progress in Chemistry, 2017, 29(11): 1351-1356.
[12] Zhang Guanglu, Zhang Ting, Zhou Lipeng, Sun Qingfu. Capsid-Inspired Multi-Component Self-Assembly of Nanocontainers: Structure, Functionalization, and Applications [J]. Progress in Chemistry, 2016, 28(9): 1289-1298.
[13] Sun Yue, Zhou Xiaoxin, Lou Zimo, Liu Yu, Fu Ruiqi, Xu Xinhua*. Functionalized Iron-Based Nano-Materials for Removal of Mercury from Aqueous Solution [J]. Progress in Chemistry, 2016, 28(8): 1156-1169.
[14] Dong Yunhong, Cao Liping. Functionalization of Cucurbit uril [J]. Progress in Chemistry, 2016, 28(7): 1039-1053.
[15] Li Donghan, Qi Shicheng, Zhang Xiaoa, Liao Mingyi. Preparation, Functionalization and Properties of Low Molecular Fluoropolymers [J]. Progress in Chemistry, 2016, 28(5): 673-685.
Viewed
Full text


Abstract

Amphiphilic Dendritic Polymer