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Progress in Chemistry 2008, Vol. 20 Issue (10): 1578-1587 Previous Articles   Next Articles

• Review •

Star-shaped Polylactic Acid

Luo Yufen; Wang Zhaoyang**; Song Xiumei; Mao Zhengzhou   

  1. (Department of Chemistry, South China Normal University, Guangzhou 510006, China)
  • Received: Revised: Online: Published:
  • Contact: Wang Zhaoyang
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The star-shaped polylactic acid (SPLA) have received considerable attention due to their unique structure and good properties. Usually, SPLA are synthesized by the “core first” method., which classified by different “core” in SPLA, such as small molecular polyol (including natural sugar alcohols), hydroxyl-terminated (cyclotri)phosphazene derivatives, hydroxyl-terminated metallic organic compounds, hydroxyl-terminated phenolic derivatives, and some star-shaped macroinitiator. The progress on their synthesis, especially via the ring-opening polymerization of lactide, properties and application are summarized. It is pointed out that the higher mulecular weight and lower viscosity, better solubility and thermal properties made SPLA have more application in biomedical material (including drug delivery carrier) than linear polylactic acid (LPLA).

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[ 1 ] Kricheldorf H R. Chemosphere , 2001 , 43 (1) : 49 —54
[ 2 ] Sodergard A , Stolt M. Prog. Polym. Sci . , 2002 , 27(6) : 1123 —1163
[ 3 ] 张国栋(Zhang G D) , 杨纪元( Yang J Y) , 冯新德(Feng X D) 等. 化学进展( Progress in Chemistry) , 2000 , 12 ( 1) :89 —102
[ 4 ] 于翠萍(Yu C P) , 李希(Li X) , 沈之荃(Shen Z Q) . 化学进展(Progress in Chemistry) , 2007 , 19(1) : 136 —144
[ 5 ] Wang L , Dong C M. J . Polym. Sci . Part A: Polym. Chem. ,2006 , 44(7) : 2226 —2236
[ 6 ] Kim S H , Han Y K, Kim Y H , et al . Makromol . Chem. , 1992 ,193(7) : 1623 —1631
[ 7 ] Kim S H , Han Y K, Ahn KD , et al . Makromol . Chem. , 1993 ,194(12) : 3229 —3236
[ 8 ] 唐新德(Tang X D) , 范星河(Fang X H) , 陈小芳(Chen X F) 等. 化学进展( Progress in Chemistry) , 2005 , 17 ( 6) :1089 —1096
[ 9 ] Arvanitoyannis L , Nakayama A , Kawasaki N , et al . Polymer ,1995 , 36(15) : 2947 —2956
[10] Tsuji H , Miyase T , Tezuka Y, et al . Biomacromolecules , 2005 ,6 (1) : 244 —254
[11] Biela T , Duda A , Pasch H , et al . J . Polym. Sci . Part A:Polym. Chem. , 2005 , 43(23) : 6116 —6133
[12] Danko M, Libiszowski J , Biela T , et al . J . Polym. Sci . Part A:Polym. Chem. , 2005 , 43(19) : 4586 —4599
[13] Finne A , Albertsson A C. Biomacromolecules , 2002 , 3 ( 4) :684 —690
[14] Kricheldorf H R , Ahrensdorf K, Rost S. Macromol . Chem.Phys. , 2004 , 205 (12) : 1602 —1610
[15] Kricheldorf H R , Heiko H T , Schwarz G. Biomacromolecules ,2004 , 5(2) : 492 —496
[16] Hao Q H , Li F X, Cao A , et al . Biomacromolecules , 2005 , 6(4) : 2236 —2247
[17] 陶燕华(Tao Y H) , 吴若峰(Wu R F) , 吴雁(Wu Y) . 化工科技( Science & Technology in Chemical Industry) , 2006 , 14(6) : 16 —20
[18] 马建华(Ma J H) , 鲍时根(Bao S G) , 朱玉俊(Zhu Y J ) . 精细与专用化学品( Fine and Specialty Chemicals) , 2006 , 14(9) : 19 —22
[19] 罗玉芬(Luo Y F) , 汪朝阳(Wang Z Y) , 宋秀美(Song X M)等. 合成化学(Chinese Journal of Synthetic Chemistry) , 2008 ,16(2) : 166 —169
[20] 赵海军(Zhao H J ) , 汪朝阳(Wang Z Y) , 侯晓娜(Hou X N)等. 化学通报(Chemistry) , 2007 , 70(10) : 787 —792
[21] Fu H L , Zou T , Cheng S X, et al . J . Tissue Eng. Regen.Med. , 2007 , 1(5) : 368 —376
[22] Kim E S , Kim B C , Kim S H. J . Polym. Sci . Part B : Polym.Phys. , 2004 , 42(6) : 939 —946
[23] Cui Y J , Tang X Z , Huang X B , et al . Biomacromolecules ,2003 , 4(6) : 1491 —1494
[24] Yuan W Z , Zhu L , Huang X B , et al . Polym. Degrad. Stab. ,2005 , 87(3) : 503 —509
[25] Yuan W Z , Tang X Z , Huang X B , et al . Polymer , 2005 , 46(5) : 1701 —1707
[26] Yuan W Z , Yuan J Y, Huang X B , et al . J . Appl . Polym. Sci . ,2007 , 104 (4) : 2310 —2317
[27] Yuan W Z , Zhu L , Huang X B , et al . Eur. Polym. J . , 2005 ,41(8) : 1867 —1873
[28] Johnson R M, Fraser C L. Biomacromolecules , 2004 , 5 ( 2) :580 —588
[29] Gorczynski J L , Chen J B , Fraser C L. J . Am. Chem. Soc. ,2005 , 127 (43) : 14956 —14957
[30] Yu X, Tang X Z , Pan C Y. Polymer , 2005 , 46 ( 24 ) :11149 —11156
[31] Cai Q , Zhao Y L , Bei J Z , et al . Biomacromolecules , 2003 , 4(3) : 828 —834
[32] Zhao Y L , Cai Q , Jiang J , et al . Polymer , 2002 , 43 ( 22) :5819 —5825
[33] Zhao Y L , Shuai X T , Chen C F , et al . Chem. Mater. , 2003 ,15(14) : 2836 —2843
[34] Zhao Y L , Shuai X T , Chen C F , et al . Macromolecules , 2004 ,37(24) : 8854 —8862
[35] Yuan W Z , Yuan J Y, Zhou M, et al . J . Polym. Sci . Part A ,2006 , 44(22) : 6575 —6586
[36] Yuan W Z , Yuan J Y, Zheng S X, et al . Polymer , 2007 , 48(9) : 2585 —2594
[37] Zhang W A , Zheng S X. Polym. Bull . , 2007 , 58 ( 5/6 ) :767 —775
[38] Gottschalk C , Wolf F , Frey H. Macromol . Chem. Phys. , 2007 ,208(15) : 1657 —1665
[39] Li Y X, Kissel T. Polymer , 1998 , 39(18) : 4421 —4427
[40] Pan J , Subbu S V , Feng M, et al . J . Control . Release , 2005 ,110(1) : 20 —33
[41] Karikari A S , Edwards W F , Mecham J B , et al .Biomacromolecules , 2005 , 6(5) : 2866 —2874
[42] Karikari A S , Williams S R , Heisey C L , et al . Langmuir , 2006 ,22(23) : 9687 —9693
[43] Nagahama K, Ohya Y, Ouchi T. Macromolecular Bioscience ,2006 , 6(6) : 412 —419
[44] Nagahama K, Nishimura Y, Ohya Y, et al . Polymer , 2007 , 48(9) : 2649 —2658
[45] Lemmouchi Y, Perry M C , Amass A J , et al . J . Polym. Sci .Part A: Polym. Chem. , 2007 , 45(17) : 3966 —3974
[46] Dong C M, Qiu K Y, Gu Z W, et al . J . Polym. Sci . Part A:Polym. Chem. , 2002 , 40(3) : 409 —415
[47] Wang J L , Dong C M. Macromol . Chem. Phys. , 2006 , 207(5) :554 —562
[48] Amsden B , Wang S , Wyss U. Biomacromolecules , 2004 , 5 (4) :1399 —1404
[49] Wang Z Y, Zhao Y M, Wang F , et al . J . Appl . Polym. Sci . ,2006 , 99(1) : 244 —252
[50] Wang Z Y, Zhao Y M, Wang F. J . Appl . Polym. Sci . , 2006 ,102(1) : 577 —587

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Abstract

Star-shaped Polylactic Acid