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化学进展 2008, Vol. 20 Issue (06): 859-868 前一篇   后一篇

• 综述与评论 •

银/聚合物纳米复合材料

安静1,2 王德松2 罗青枝2 李雪艳2 李敏娜2 袁晓燕1*   

  1. (1. 天津大学材料科学与工程学院 天津 300072; 2. 河北科技大学理学院 石家庄 050018)
  • 收稿日期:2007-08-07 修回日期:2007-10-23 出版日期:2008-06-24 发布日期:2008-06-24
  • 通讯作者: 袁晓燕

silver/polymer nanocomposites

An Jing1,2 Wang Desong1 Luo Qingzhi2 Li Xueyan2 Li Minna2 Yuan Xiaoyan1*

  

  1. (1. School of Materials Science and Engineering, Tianjin University, Tianjin 300072, China;
    2. College of Sciences, Hebei University of Science and Technology, Hebei, Shijiazhuang 050018, China)
  • Received:2007-08-07 Revised:2007-10-23 Online:2008-06-24 Published:2008-06-24
  • Contact: Xiaoyan Yuan
银/聚合物纳米复合材料是一种典型的聚合物基复合材料, 其结构和性能依赖于合成方法,因此开发材料的优异性能必须以深入研究纳米材料的先进合成技术为前提。本文综述了纳米银粒子及其与聚合物形成的纳米复合材料的最新合成进展, 重点介绍了基于液相化学还原方法合成纳米银粒子的新方法, 如溶胶-凝胶法、沉淀法、微乳液法和离子液体法, 以及纳米银粒子的分散技术和原位法合成银/聚合物纳米复合材料的新技术, 并介绍了纳米银复合材料的电绝缘性、表面增强拉曼散射性能、抗菌性及其在生物医学等领域中的应用。
Silver/polymer nanocomposite is a typical polymer-based composites. Their structures and properties are dependent on their synthetic methods. Recent progress in synthesis of silver nanoparticles and silver/polymer nanocomposites is reviewed in this paper. Specially, the novel synthetic methods of silver nanoparticles based on aqueous chemistry reducing theory, such as sol-gel method, deposition method, microemulsion method and ionic liquid method, are introduced. The dispersion techniques of silver nanoparticles and silver/polymer nanocomposites synthesized by in situ polymerization are also presented. Electric insulation properties, surface enhanced Raman scattering properties, antibacterial properties and applications in biomedical area of silver/polymer nanocomposite materials are also described in the paper.

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[1 ] Lu L , Kobayashi A , Tawa K, et al . Chem. Mater. , 2006 , 18(20) : 4894 —4901
[2 ] Nikonorova N A , Barmatov E B , Pebalk D A , et al . J . Phys.Chem. C , 2007 , 111 (24) : 8451 —8458
[3 ] Mbhele Z H , Salemane M G, van Sittert C G, et al . Chem.Mater. , 2003 , 15(26) : 5019 —5024
[4 ] Pinter E , Patakfalvi R , Fulei T , et al . J . Phys. Chem. B ,2005 , 109 (37) : 17474 —17478
[5 ] Pinter E , Fekete Z A , Berkesi O , et al . J . Phys. Chem. C ,2007 , 111 : 11872 —11878
[6 ] Reda T , Collings A F , Barton C , et al . J . Phys. Chem. B ,2003 , 107 (50) : 13774 —13781
[7 ] Panigrahi S , Praharaj S , Basu S , et al . J . Phys. Chem. B ,2006 , 110 (27) : 13436 —13444
[8 ] Barmatov E B , Pebalk D A , Barmatova M V. Langmuir , 2004 ,20(25) : 10868 —10871
[9 ] Henneke D E. Doctorial Dissertation of the University of Texas ,2001
[10] Ball P , Garwin L. Nature , 1992 , 355 : 761 —766
[11] Irshad H , Mathias B , Adam J P , et al . Langmuir , 2003 , 19 :4831 —4835
[12] Zhang L , Shen Y, Xie A , et al . J . Phys. Chem. B , 2006 , 110(13) : 6615 —6620
[13] Kim K Y, Choia Y T , Seo D J , et al . Materials Chemistry and Physics , 2004 , 88 : 377 —382
[14] Ullah M H , Kim I , Ha C S. Materials Letters , 2006 , 60 : 1496 —1501
[15] Nersisyan H H , Lee H , Son H T , et al . Materials Research Bulletin , 2003 , 38 : 949 —956
[16] Chen M, Wang L Y, Han J T , et al . J . Phys. Chem. B , 2006 ,110 : 11224 —11231
[17] Chen M, Feng Y G, Wang X, et al . Langmuir , 2007 , 23 :5296 —5304
[18] Wang D T , Song C X, Hu Z S , et al . Materials Letters , 2005 ,59 : 1760 —1763
[19] Huang H Z , Yang X R. Carbohydrate Research , 2004 , 339 :2627 —2631
[20] Ohde H , Hunt F , Wai C M. Chem. Mater. , 2001 , 13 : 4130 —4135
[21] Capek I. Advances in Colloid and Interface Science , 2004 , 110 :49 —74
[22] Andersson M, Pedersen J S , Anders E C. Langmuir , 2005 , 21 :11387 —11396
[23] Zhang W Z , Qiao X L , Chen J G, et al . Journal of Colloid and Interface Science , 2006 , 302 : 370 —373
[24] Zhang W Z , Qiao X L , Chen J G. Chemical Physics , 2006 , 330(3) : 495 —500
[25] Antonietti M, Kuang D B , Smarsly B , et al . Angew. Chem. Int .Ed. , 2004 , 43 : 4988 —4992
[26] Dupont J , Fonseca G S , Umpierre A P , et al . J . Am. Chem.Soc. , 2002 , 124 : 4228 —4229
[27] Jia H Y, Xu W Q , An J , et al . Spectrochimica Acta Part A ,2006 , 64 : 956 —960
[28] He P , Liu H , Li Z Y, et al . Langmuir , 2004 , 20 : 10260 —10267
[29] Lovell J M, Findlay M M, Nedwell J R. Comparative Biochemistry and Physiology Part A , 2006 , 143 : 286 —291
[30] Omer M, Ahmed E , Leong W K. Journal of Organometallic Chemistry , 2006 , 691 : 1055 —1060
[31] Simchi A , Ahmadi R , Seyed R S , et al . Materials and Design ,2007 , 28 : 850 —856
[32] Vigneshwaran N , Nachane R P , Balasubramanya R H , et al .Carbohydrate Research , 2006 , 341 : 2012 —2018
[33] Li T H , Park H G, Choi S H. Materials Chemistry and Physics ,2007 , 105 : 325 —330
[34] Lin X Z , Teng X, Yang H. Langmuir , 2003 , 19(24) : 10081 —10085
[35] Tokareva I , Hutter E. J . Am. Chem. Soc. , 2004 , 126 (48) :15784 —15789
[36] Murray B J , Li Q , Newberg J T , et al . Nano Lett . , 2005 , 5(11) : 2319 —2324
[37] Anand M, Bell P W, Fan X, et al . J . Phys. Chem. B , 2006 ,110(30) : 14693 —14701
[38] Chang J S , Lee Y P , Wang R C. Ind. Eng. Chem. Res. , 2007 ,46(17) : 5591 —5599
[39] Tao S , Juan M. Advanced Materials , 2002 , 14(2) : 128 —130
[40] Chen Z M, Gang T , Zhang K, et al . Colloids and Surfaces A:Physicochem. Eng. Aspects , 2006 , 272 : 151 —156
[41] Yakutik I M, Shevchenko G P. Surface Science , 2004 , 566P568 :414 —418
[42] Khanna P K, Singh N , Charan S. Materials Chemistry and Physics , 2005 , 93 : 117 —121
[43] Huang H Z , Yuan Q , Yang X R. Colloids and Surfaces B :Biointerfaces , 2004 , 39 : 31 —37
[44] Singh N , Khanna P K. Materials Chemistry and Physics , 2007 ,104 : 367 —372
[45] Wang L M, Chen D J . Materials Letters , 2007 , 61 : 2113 —2116
[46] Zhang Z P , Zhang L D , Wang S X, et al . Polymer , 2001 , 42 :8315 —8318
[47] Liu W J , Zhang Z C , He W D , et al . Journal of Solid State Chemistry , 2006 , 179 : 1253 —1258
[48] Zhao C J , Zhao Q T , Zhao Q Z , et al . Journal of Photochemistry and Photobiology A: Chemistry , 2007 , 187 : 146 —151
[49] Zhang K, Fu Q , Fan J H , et al . Materials Letters , 2005 , 59 :3682 —3686
[50] Lei Z L , Fan Y H. Materials Letters , 2006 , 60 : 2256 —2260
[51] Nath S , Ghosh S K, Kundu S , et al . Materials Letters , 2005 ,59 : 3986 —3989
[52] Marcela M O , Castro E G, Canestraro C D , et al . J . Phys.Chem. B , 2006 , 110 : 17063 —17069
[53] Zhang J H , Liu H Y, Wang ZL , et al . Materials Letters , 2007 ,61 : 4579 —4582
[54] KimJ W, Lee J E , Kim S J , et al . Polymer , 2004 , 45 : 4741 —4747
[55] Cho J , Caruso F. Chem. Mater. , 2005 , 17 : 4547 —4552
[56] Joseph Y, Besnard I , Rosenberger M, et al . J . Phys. Chem. B ,2003 , 107 : 7406 —7410
[57] Temgire M K, Joshi S S. Radiation Physics and Chemistry , 2004 ,71 : 1039 —1044
[58] Jiang H J , Moon K, Li Y, et al . Chem. Mater. , 2006 , 18 :2969 —2973
[59] Fan H , Bentley H R , Kathan K R , et al . J . Non-Cryst . Solids ,2001 , 285 (1/3) : 79 —83
[60] Serafetinides A A , Skordowlis C D , Makropoulou M I , et al .Appl . Surf . Sci . , 1998 , 135 : 276 —280
[61] Stepanov A L , Popok V N , Khaibullin I B. Nuclear Instruments and Methods in Physics Research B , 2002 , 191 : 473 —477
[62] Setua P , Chakraborty A , Seth D , et al . J . Phys. Chem. C ,2007 , 111 (10) : 3901 —3907
[63] Yang Y, Matsubara S , Xiong L , et al . J . Phys. Chem. C ,2007 , 111 (26) : 9095 —9104
[64] Miljanic’ S , Frkanec L , Biljan T , et al . Langmuir , 2006 , 22 :9079 —9081
[65] Lee D , Cohen R E , Rubner M F. Langmuir , 2005 , 21 (21) :9651 —9659
[66] Podsiadlo P , Paternel S , Rouillard J M, et al . Langmuir , 2005 ,21(25) : 11915 —11921
[67] Sambhy V , MacBride M, Peterson B R , et al . J . Am. Chem.Soc. , 128 : 9798 —9808
[68] Feng Q L , Wu J , Chen G Q , et al . Journal of Biomedical Materials Research , 2000 , 52 (4) : 662 —668
[69] Chen S P , Wu G Z , Zeng H Y. Carbohydrate Polymers , 2005 ,60 : 33 —38
[70] Zhou N L , Liu Y, Li L , et al . Current Applied Physics , 2007 ,7S1 : e58 —e62
[71] Stephan T D , Panittamat K, Pranut P. Colloids and Surfaces A:Physicochem. Eng. Aspects , 2006 , 289 : 105 —109
[72] Martinac A , Filipoyic-Grcic J , BarBaric M, et al . Eur. J .Pharm. Sci . , 2002 , 17 : 207 —216

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摘要

银/聚合物纳米复合材料