中文
Announcement
More
Progress in Chemistry 2006, Vol. 18 Issue (0203): 308-315 Previous Articles   Next Articles

• Review •

Supramolecular Polymers Formed Through Hydrogen-Bonded Noncovalent Interactions

Yujiang Wang;Liming Tang *   

  1. Institute of Polymer Research, Department of Chemical Engineering, Tsinghua University, Beijing 100084, China
  • Received: Revised: Online: Published:
  • Contact: Liming Tang
PDF ( 6600 ) Cited
Export

EndNote

Ris

BibTeX

Supramolecular polymers formed through noncovalent interactions have attracted great attention recently due to their special structures and properties. The supramolecular chemistry, hydrogen bond and supramolecular polymers are introduced. Supramolecular polymers formed by different hydrogenbonded systems, including multiplehydrogenbonded interactions, hydrogen bond formed from carboxylic acids and pyridines, and multiple interactions including hydrogen bond and other noncovalent bond, are reviewed in detail. The research status quo and the perspective of supramolecular polymers are discussed.

CLC Number: 

[ 1 ] Bosman A W, Brunsveld L , Meijer E W, et al . Macromol .Symp. , 2003 , 201 : 143 —154
[ 2 ] Prins L J , Reinhoudt D N , Timmerman P. Angew. Chem. Int .Ed. , 2001 , 40 : 2382 —2426
[ 3 ] Jorgenson W L , Pranata J . J . Am. Chem. Soc. , 1990 , 112 :2008 —2010
[ 4 ] Pranata J , Wierschke S G, Jorgenson W L. J . Am. Chem. Soc. ,1991 , 113 : 2810 —2819
[ 5 ] Sêntjens S H M, Sijbesma R P , van Genderen M H P , Meijer E W. J . Am. Chem. Soc. , 2000 , 122 : 7487 —7493
[ 6 ] Brunsveld L , Folmer B J B , Meijer E W. Chem. Rev. , 2001 ,101 : 4071 —4097
[ 7 ] Kolotuchin S V , Zimmerman S C. J . Am. Chem. Soc. , 1998 ,120 : 9092 —9093
[ 8 ] Jin S , Ma Y G, Zimmerman S C , et al . Chem. Mater. , 2004 ,16 : 2975 - 2977
[ 9 ] Corbin P S , Zimmerman S C. J . Am. Chem. Soc. , 1998 , 120 :9710 —9711
[10] Beijer F H , Kooijman H , Meijer E W, et al . Angew. Chem. Int .Ed. , 1998 , 37 : 75 —78
[11] Sijbesma R P , Beijer F H , Meijer E W, et al . Science , 1997 ,278 : 1601 —1604
[12] Beijer F H , Sijbesma R P , Meijer E W, et al . J . Am. Chem.Soc. , 1998 , 120 : 6761 —6769
[13] Folmer B J B , Sijbesma R P , Meijer E W, et al . Adv. Mater. ,2000 , 12 : 874 —878
[14] Cate A T, Sijbesma R P. Macromol . Rapid Commun. , 2002 ,23 : 1094 —1112
[15] Lange R F M, Gurp M V , Meijer E W. J . Polym. Sci . Pol .Chem. , 1999 , 37 : 3657 —3670
[16] Folmer B J B , Sijbesma R P , Meijer E W. J . Am. Chem. Soc. ,2001 , 123 : 2093 —2094
[17] Keizer H M, Kessel R V , Meijer E W, et al . Polymer , 2003 ,44 : 5505 —5511
[18] Keizer H M, Sijbesma R P , Meijer E W, et al . Macromolecules ,2003 , 36 : 5602 —5606
[19] Schnell I , Langer B , Spiess H W, et al . Phys. Chem. Chem.Phys. , 2002 , 4 : 3750 —3758
[20] Yamauchi K, Kanomata A , Inoue T, et al . Macromolecules ,2004 , 37 : 3519 —3522
[21] Loontjens T, Put J , Coussens B , et al . Macromol . Symp. , 2001 ,174 : 357 —371
[22] Yagai S , Iwashima T, Karatsu T, et al . Chem. Commun. , 2004 ,1114 —1115
[23] Pourcain C B S , Griffin A C. Macromolecules , 1995 , 28 : 4116 —4121
[24] Wiegel K N , Griffin A C , Black M S , et al . J . Appl . Polym.Sci . , 2004 , 92 : 3097 —3106
[25] He C B , Donald A M, Griffin A C , et al . J . Polym. Sci . B :Polym. Phys. , 1998 , 36 : 1617 —1624
[26] Lu X H , He C B , Griffin A C. Macromolecules , 2003 , 36 :5195 —5200
[27] Armstrong G, Buggy M. Polym. Int . , 2002 , 51 : 1219 —1224
[28] Lee M, Cho B K, Kang Y S , et al . Macromolecules , 1999 , 32 :8531 —8537
[29] Zhang J , Wu L X, Fan Y G. Journal of Molecular Structure ,2003 , 660 : 119 —129
[30] 谌东中(Chen D Z) , 万雷(Wan L) , 方江邻(Fang J L) 等,高分子学报(Acta Polymerica Sinica) , 2002 , 6 : 734 —737
[31] 金宏威(Jin H W) , 封继康(Feng J K) , 张希(Zhang X) 等,化学学报(Acta Chimica Sinica) , 2000 , 59 : 194 —198
[32] Yasuda Y, Iishi E , Inada H , et al . Chem. Lett . , 1996 , 575 —576
[33] Ma Y G, Kolotuchin S V , Zimmerman S C. J . Am. Chem.Soc. , 2002 , 124 : 13757 —13769
[34] George S J , Ajayaghosh A , Meijer E W, et al . Angew. Chem.Int . Ed. , 2004 , 43 : 3422 —3425
[35] Jonkheijm P , Miura A , Meijer E W, et al . Angew. Chem. Int .Ed. , 2004 , 43 : 74 —78
[36] Kiyonaka S , Sugiyasu K, Hamachi I , et al . J . Am. Chem.Soc. , 2002 , 124 : 10954 —10955
[37] Xu H , Stampp S P , Rudkevich D M. Org. Lett . , 2003 , 5 :4583 —4586
[38] Hofmeier H , El-ghayoury A , Schubert U S. Chem. Commun. ,2004 , 318 —319
[39] Sakai N , Mared A J , Matile J . Accounts Chem. Res. , 2005 ,38 : 79 —87
[40] Ciferri A. Macromol . Rapid Commun. , 2002 , 23 : 511 —529
[41] Estroff L A , Hamilton A D. Chem. Rev. , 2004 , 104 : 1201 —1217
[42] Lehn J M. Polym. Int . , 2002 , 51 : 825 —839

[1] Jing He, Jia Chen, Hongdeng Qiu. Synthesis of Traditional Chinese Medicines-Derived Carbon Dots for Bioimaging and Therapeutics [J]. Progress in Chemistry, 2023, 35(5): 655-682.
[2] Jianfeng Yan, Jindong Xu, Ruiying Zhang, Pin Zhou, Yaofeng Yuan, Yuanming Li. Nanocarbon Molecules — the Fascination of Synthetic Chemistry [J]. Progress in Chemistry, 2023, 35(5): 699-708.
[3] Xinyue Wang, Kang Jin. Chemical Synthesis of Peptides and Proteins [J]. Progress in Chemistry, 2023, 35(4): 526-542.
[4] Liu Yvfei, Zhang Mi, Lu Meng, Lan Yaqian. Covalent Organic Frameworks for Photocatalytic CO2 Reduction [J]. Progress in Chemistry, 2023, 35(3): 349-359.
[5] Zixuan Liao, Yuhui Wang, Jianping Zheng. Research Advance of Carbon-Dots Based Hydrophilic Room Temperature Phosphorescent Composites [J]. Progress in Chemistry, 2023, 35(2): 263-373.
[6] Yehjun Lim, Yanmei Li. Chemical Synthesis/Semisynthesis of Post-Translational Modified Tau Protein [J]. Progress in Chemistry, 2022, 34(8): 1645-1660.
[7] Peng Xu, Biao Yu. Challenges in Chemical Synthesis of Glycans and the Possible Problems Relevant to Condensed Matter Chemistry [J]. Progress in Chemistry, 2022, 34(7): 1548-1553.
[8] Yawei Liu, Xiaochun Zhang, Kun Dong, Suojiang Zhang. Research of Condensed Matter Chemistry on Ionic Liquids [J]. Progress in Chemistry, 2022, 34(7): 1509-1523.
[9] Deshan Zhang, Chenho Tung, Lizhu Wu. Artificial Photosynthesis [J]. Progress in Chemistry, 2022, 34(7): 1590-1599.
[10] Fangyuan Li, Junhao Li, Yujie Wu, Kaixiang Shi, Quanbing Liu, Hongjie Peng. Design and Preparation of Electrode Nanomaterials with “Yolk-Shell”Structure for Lithium/Sodium-Ion/Lithium-Sulfur Batteries [J]. Progress in Chemistry, 2022, 34(6): 1369-1383.
[11] Shiyu Li, Yongguang Yin, Jianbo Shi, Guibin Jiang. Application of Covalent Organic Frameworks in Adsorptive Removal of Divalent Mercury from Water [J]. Progress in Chemistry, 2022, 34(5): 1017-1025.
[12] Xiaoqing Ma. Graphynes for Photocatalytic and Photoelectrochemical Applications [J]. Progress in Chemistry, 2022, 34(5): 1042-1060.
[13] Xiuli Shao, Siqi Wang, Xuan Zhang, Jun Li, Ningning Wang, Zheng Wang, Zhongyong Yuan. Fabrication and Application of MFI Zeolite Nanosheets [J]. Progress in Chemistry, 2022, 34(12): 2651-2666.
[14] Baoyou Yan, Xufei Li, Weiqiu Huang, Xinya Wang, Zhen Zhang, Bing Zhu. Synthesis of Metal-Organic Framework-NH2/CHO and Its Application in Adsorption Separation [J]. Progress in Chemistry, 2022, 34(11): 2417-2431.
[15] Yang Linyan, Guo Yupeng, Li Zhengjia, Cen Jie, Yao Nan, Li Xiaonian. Modulation of Surface and Interface Properties of Cobalt-Based Fischer-Tropsch Synthesis Catalyst [J]. Progress in Chemistry, 2022, 34(10): 2254-2266.