橡胶技术网

合成橡胶工业
CHINA SYNTHETIC RUBBER INDUSTRY
2003 Vol.26 No.4 P.197-202,211

橡胶技术网

纳米技术在橡胶工业中应用的新进展

New advances on applications of nanotechnology in rubber industry

高琼芝  周彦豪  陈福林  胡丽萍  贾德民 

摘 要:简述了聚合物纳米复合材料的制备,详述了纳米增强橡胶复合材料、功能性纳米橡胶复合材料以及纳米技术改性着色剂技术的研究开发进展,并探讨了橡胶纳米复合材料的发展方向.
关键词:橡胶纳米复合材料;增强;改性;功能材料
分类号:TQ050.4+3  文献标识码:A

文章编号:1000-1255(2003)04-0197-06

基金项目:国家自然科学基金资助重点项目(59933060).
作者简介:高琼芝,女,1974年生,硕士研究生.主要从事聚合物改性及聚合物基复合材料的研究.周彦豪,通讯联系人.
作者单位:高琼芝(广东工业大学材料与能源学院,广东,广州,510090) 
     周彦豪(广东工业大学材料与能源学院,广东,广州,510090) 
     陈福林(广东工业大学材料与能源学院,广东,广州,510090) 
     胡丽萍(广东工业大学材料与能源学院,广东,广州,510090) 
     贾德民(华南理工大学材料科学与工程学院,广东,广州,510641) 

参考文献:

[1]Schmidt H. Chemical routes to nanostructure materials[J]. Mater Sci Technol, 2000, 16(11, 12): 1 356 ~1 358
[2]Carotenuto G. Polymer-based nanocomposites: New potentiali ties for polymers[J]. Polym News, 2000, 25(6): 191 ~ 193
[3]Godovsky D Y. Device applications of polymer - nanocomposites [J]. Adv Polym Sci, 2000, 153:163 ~ 205
[4]Siwick B J, Kalinina O, Kumacheva E , et al. Polymeric nano structured material for high- density three- dimensional optical memory storage [ J]. Journal of Applied Physics, 2001, 90 (10):
[5]328 ~ 5 334 5.Ko M B, Kim J, Choe C R . Effects of interaction between intercalant and matrix polymer in preparation of clay- dispersed nanocomposite [J]. Korea Polym J, 2000, 8 (3): 120 ~ 124
[6]Alessandro V. Industrial prospects for composites[J]. Ind Gom ma, 2000, 44(8): 53 ~ 58
[7]Ruban L, Lomakin S, Zaikov G. Polymer nanocomposites with participation of layer aluminum silicates[J]. Low Flammability Polym Mater, 1999(4): 175 ~ 179
[8]胡圣飞.纳米级CaCO3粒子对PVC增韧增强研究[J].中国塑料,1999,13(6):25~28
[9]任显诚,白半英,王贵恒,等.纳米级CaCO3粒子增韧增强聚丙烯的研究[J].中国塑料,2000,14(1):22~26
[10]张士齐功能纳米材料及其在橡胶工业的应用前景[J].中国橡胶,2001,18(2):20~24
[11]Gu H C. Nanostructured material: The advanced material for 21st century[J]. World Science, 1999(5): 22 ~ 24
[12]王铀,沈静姝.制备聚合物纳米复合材料展望[J].化工新型材料,1998(1):8~12
[13]Honma I, Nomura S, Nakajima H. Proton conducting organic/inorganic nanocomposite polymer electrolytic membrane synthesized by sol -gel process[A]. Nanophase and Nanocomposite Materials ( Ⅲ ) Boston: Symposium, MA, 1999
[14]章永化,龚克成.Sol-gel法制备有机/无机纳米复合材料的进展[J].高分子科学与工程,1997,13(4):14~18
[15]乔放,李强,漆宗能,等.聚酰胺/黏士纳米复合材料的制备、结构表征及性能研究[J].高分子通报,1997(3):135~143
[16]熊传溪,闻荻江,皮正杰,等.有机无机混杂纳米微细Al2O3增韧增强聚苯乙烯的研究[J].高分子材料科学与工程,1994(4):69~73
[17]王庭慰,陈逸范.高介电性能的陶瓷-聚合物复合材料初探[J].高分子材料科学与工程,1996,12(5):77~82
[18]王胜杰,李强,漆宗能,等.硅橡胶/蒙脱土复合材料的制备、结构与性能[J].高分子学报,1998(2):149~153
[19]马永梅,漆宗能.聚合物/层状无机物纳米复合材料[J].塑料,2001,30(6):9~13
[20]杨柏,黄金满,郝恩才,等.半导体纳米微粒在聚合物基体中的复合与组装[J].高等学校化学学报,1997,18(7):1219~1 226
[21]裘怿明,陈克正,刘志琴,等.纳米纤维填充硅橡胶的应力松弛方程[J].特种橡胶制品,1997,18(4):48~50
[22]Tsukruk V V. Nanocomposite polymer layers for molecular tribol ogy[J]. Tribology Letters, 2001, 10(1, 2): 127 ~ 132
[23]张立群,孙朝晖,王一中,等.黏土/NBR纳米复合材料的性能研究[J].橡胶工业,1999,46(4):213~216
[24]张立群,王一中,王益庆,等.黏土/丁苯橡胶纳米复合材料的制备和性能[J].特种橡胶制品,1998,19(2):6~9
[25]Changwoon N, Hyune J R, Sang H H, et al. Fracture behaviour of acrylonitrile-butadiene rubber/clay nanocomposite[J] . Polymer International, 2001,50(11): 1 265 ~ 1 268
[26]Okamoto M, Morita S, Kotaka T. Dispersed structure and ionic conductivity of smectic clay/polymer nanocomposites[J]. Poly mer, 2001,42(6): 2 685 ~2 688
[27]Wu J H, Huang J L, Chen N S, et al. Surface energy of mineral powders and interaction between silicone rubber matrix and min eral filler[J]. Material Science Letters, 1999, 18(6):461 ~ 464
[28]Wu J H, Huang J L, Chen N S, et al. Preparation of modified ul trafine mineral powder and its interaction with silicone rubber matrix[J]. Material Processing Technology, 2000(4): 258 ~ 261
[29]贾红兵,金志刚,吉庆敏,等.新型无机纳米填料对SBR的补强性能[J].橡胶工业,2000,47(11):647~651
[30]Murphy L J, Wang M J. Carbon-silica dual phase filler( Ⅲ ): ESCA and IR, characterization[J]. Rubber Chemical and Tech nology, 1998, 71:998
[31]段咏欣,赵素合,林勇.炭黑-白炭黑双相纳米填料及其增强SSBR性能[J].合成橡胶工业,2002,25(6):350~353
[32]Ikeda Y, Tandka A, Kohjiya S. Reinforcement of styrene - buta diene rubber vulcanizate by in - situ silica prepared by the sol gel reaction of tetraethoxysilane[J]. Materials Chemistry, 1997, 7(8): 1 497 ~ 1 499
[33]Tanahashi H, Osanai S. Reinforcement of acrylonireile - butadiene rubber by silica generated in situ[J]. Rubber Chemistry and Technology, 1998, 71 ( 1 ): 38 ~ 40
[34]Ikeda Y, Tandka A, Kohjiya S. Effect of catalyst on in situ silica reinforcement of styrene- butadiene rubber vulcanizate by the sol-gel action of tetrarethoxysilane[J]. Material Chemistry, 1997, 7 (3): 455 ~ 458
[35]Sugiya S, Terakawa K. Dynamic mechanical properties of morphology of silica- reinforced butadiene by the sol- gel process [J]. Kautu Gummi Kunstst, 1997, 50(7, 8): 538 ~ 540
[36]Sun C C, Mark J E. In - situ generation of reinforcement in poly isobutylene[J] .Polymer Science, Part B: Polymer Physics, 1987, 25:1 561 ~ 1 563
[37]Sharf M A, Kloczkowski A, Mark J E. Dynamic- mechanical losses in filled poly(dimethyl siloxane) network[J] .Rubber Chemistry and Technology, 1995, 68 (4): 601 ~ 604
[38]Hashim A S, Kawabata N, Kohjiya S. Silica reinforcement epoxidized natural rubber by the sol-gel method[J]. Sol- Gel Sci ence and Technology, 1995, 5 (3): 211 ~ 215
[39]吴绍吟,李红英,马文石,等.纳米碳酸钙对溶聚丁苯橡胶胶料的补强作用[J].橡胶工业,1999,46(8):456~460
[40]邹德荣,毛晓明,徐泽明,等.纳米碳酸钙对丁腈橡胶性能影响研究[J].弹性体,2001,11(4):21~23
[41]刘晓欣,周刚,文潮,等纳米金刚石对橡胶力学性能的影响[J].特种橡胶制品,2001,22(5):14~16
[42]王益庆,张立群,张慧峰,等.凹凸棒土/橡胶纳米复合材料结构和性能研究[J].北京化工大学学报,1999,26(3):25~29
[43]魏爱龙,魏延贤,杨风伟,等.纳米氧化锌对橡胶性能的研究[J].橡胶工业,2001,48(9):534~537
[44]陈志宏.纳米氧化锌的进展-记山西丰海纳米科技有限公司2002年专家年会[J].橡胶工业,2002,49(4):214
[45]张立德.纳米材料[M].北京:化工出版社,2000.12
[46]赵阳,卢咏来,刘力,等甲基丙烯酸锌/丁腈橡胶纳米-微米混杂复合材料(Ⅰ):微观结构与力学性能[J].合成橡胶工业,2001,24(6):357~360
[47]赵阳,冯予星,卢咏来,等.甲基丙烯酸锌/丁腈橡胶纳米-微米混杂复合材料(Ⅱ):微观结构与宏观性能[J].合成橡胶工业,2002,25(1):35~38
[48]日本Zeon公司.氢化丁腈橡胶/聚甲基丙烯酸锌纳米复合材料(日文)[J]Polyfile,1998,35(8):43~459
[49]Hamed G R. Reinforcement of rubber[J]. Rubb Chem Technol,2000, 73:524
[50]潘伟,翟普,刘立志,等.SiO2纳米粉对硅橡胶复合材料的压阻、阻温特性的影响[J].材料研究学报,1997,11(4):397~401
[51]陈克正,裘怿明,张志琨纳米导电纤维与导电炭黑并用填充硅橡胶料的流变性能[J].橡胶工业,1998,45(10):583-586
[52]陈克正,王德平,张志琨纳米导电纤维和导电炭黑并用填充硅橡胶的电性能[J].材料研究学报,1999,13(3):323~327
[53]Das N C, Chaki T K, Khastgir D. Effect of axial stretching on electrical resistivity of short carbon fibre and carbon black filled conductive rubber composites [ J ]. Polyner International, 2002, 51 (2): 156 ~ 163
[54]Das N C, Chaki T K, Khastgir D. Conductive rubbers made by adding conductive carbon black to EVA, EPDM, and EVAEPDM blends[J]. Plastics, Rubber and Composites, 2001. 30 (4): 162 ~ 169
[55]北京汇海宏纳米科技有限公司.纳米材料新技术在橡胶工业中的应用[A].中国橡胶工业科技信息会议,山东泰安,2000
[56]Gwaily S E, Badawy M M, Hassan H H, et al. Natural rubber composites as thermal neutron radiation shields ( Ⅰ ): B4C/NR composites[J]. Polymer Testing, 2002, 21 (2): 129 ~ 133
[57]Das N C, Khastgir D, Chaki T K, et al. Electromagnetic interference shielding effectiveness of carbon black and carbon fibre filled EVA and NR based composites[J]. Composites, Part A, Applied Science and Manufacturing, 2000, 31A(10): 1 069 ~ 1081
[58]Hussain M, Choa Y H, Niihara K. Conductive rubber materials for pressure sensors[A]. 5th International Conference on Nano structured Materials(NANO 2000), Sendai, Japan, 2000
[59]Hussain M, Choa Y H, Niihara K. Ceramics on electrical resistivity of carbon filled rubber materials[J]. Scripta Materialia, 2001,44(8,9): 1 203 ~ 1 206
[60]张士齐.纳米材料-橡胶的补强剂[J].中国橡胶,2001,17(2):24~26


收稿日期:2002年4月29日

修稿日期:2003年3月6日

出版日期:2003年7月15日