欢迎登录材料期刊网

材料期刊网

高级检索

碳纳米管具有独特的结构和优异的性能,但其表面活性差、不溶于水和有机溶剂,极大地制约了碳纳米管的应用.介绍了碳纳米管共价功能化、非共价功能化、混杂功能化修饰方法,对比了各自的优缺点;综述了碳纳米管在聚合物基、金属基、陶瓷基复合材料中的作用机理和广泛应用,并对其进一步发展提出展望.高性能功能化修饰碳纳米管复合材料的开发和应用势必会越来越广.

参考文献

[1] Iijima Sumio .Helical microtubules of graphitic carbon[J].NATURE,1991,354(6348):56.
[2] Zhang, Q.;Huang, J.-Q.;Qian, W.-Z.;Zhang, Y.-Y.;Wei, F. .The road for nanomaterials industry: A review of carbon nanotube production, post-treatment, and bulk applications for composites and energy storage[J].Small,2013(8):1237-1265.
[3] 董振华,朱靖,刘洋,魏宏亮,楚晖娟.功能化碳纳米管的应用研究进展[J].化工新型材料,2010(12):14-16,26.
[4] 刘举庆,肖潭,吴萍.碳纳米管的功能化及其在聚合物结构复合材料中的应用[J].纳米科技,2007(03):21-25.
[5] Sitko, R.;Zawisza, B.;Malicka, E..Modification of carbon nanotubes for preconcentration, separation and determination of trace-metal ions[J].TrAC: Trends in Analytical Chemistry,2012:22-31.
[6] Sang Won Kim;Taehoon Kim;Yern Seung Kim .Surface modifications for the effective dispersion of carbon nanotubes in solvents and polymers[J].Carbon: An International Journal Sponsored by the American Carbon Society,2012(1):3-33.
[7] 刘剑洪,吴双泉,何传新,卓海涛,朱才镇,李翠华,张黔玲.碳纳米管和碳微米管的结构、性质及其应用[J].深圳大学学报(理工版),2013(01):1-11.
[8] Zhao Z Y;Yang Z H;Hu Y W et al.Multiple functionalization of multi-walled carbon nanotubes with carboxyl and amino groups[J].Applied Surface Sinence,2013,276:476.
[9] 万丽;王贤保;李少卿 等.碳纳米管的绿色高效功能化修饰[J].材料导报,2007,21(3):121.
[10] HONGXIA YAN;YUAN JIA;LEI MA;YANLI WANG .FUNCTIONALIZED MULTIWALLED CARBON NANOTUBES BY GRAFTING HYPERBRANCHED POLYSILOXANE[J].Nano: brief reports and reviews,2014(3):1450040-1-1450040-8.
[11] Seo S J;Kima J J;Kimb J H et al.Enhanced mechanical properties and bone bioactivity of chitosan/silica membrane by functionalized-carbon nanotube incorporation[J].Composites Science and Technology,2014,96:31.
[12] Che?mecka, E.;Pasterny, K.;Kupka, T.;Stobiński, L. .DFT studies of COOH tip-functionalized zigzag and armchair single wall carbon nanotubes[J].Journal of molecular modeling,2012(5):2241-2246.
[13] Rafiee R;Pourazizi R .Influence of CNT functionalization on the interphase region between CNT and polymer[J].Computation materials science,2015,96:573.
[14] Garg A.;Sinnott SB. .Effect of chemical functionalization on the mechanical properties of carbon nanotubes[J].Chemical Physics Letters,1998(4):273-278.
[15] Ponnamma D;Sung S H;Hong J S et al.Influence of noncovalent functionalization of carbon nanotubes on the rheological behavior of natural rubber latex nanocomposites[J].European Polymer Journal,2014,53:147.
[16] Casella I G;Contursi M;Toniolo R .A non-enzymatic carbohydrate sensor based on multiwalled carbon nanotubes modified with adsorbed active gold particles[J].ELECTROANALYSIS,2014,26(5):988.
[17] Steuerman D W;Star A;Narizzano R et al.Interactions between conjugated polymers and single-walled carbon nanotubes[J].Journal of Physical Chemistry B,2002,106(12):3124.
[18] Behnam B;Shier W T;Nia A H et al.Non-covalent functionalization of single-walled carbon nanotubes with modified polyethyleneimines for efficient gene delivery[J].International Journal of Pharmaceutics,2013,454(1):204.
[19] Ntim, S.A.;Sae-Khow, O.;Witzmann, F.A.;Mitra, S. .Effects of polymer wrapping and covalent functionalization on the stability of MWCNT in aqueous dispersions[J].Journal of Colloid and Interface Science,2011(2):383-388.
[20] Amiri A;Shanbedi M;Amiri H et al.Pool boiling heat transfer of CNT/water nanofluids[J].Appiled Thermal Engineering,2014,71(1):450.
[21] Liu JQ;Xiao T;Liao K;Wu P .Interfacial design of carbon nanotube polymer composites: a hybrid system of noncovalent and covalent functionalizations[J].Nanotechnology,2007(16):65701-1-65701-6-0.
[22] Moradian H;Fasehee H;Keshvari H et al.Poly(ethyleneimine) functionalized carbon nanotubes as efficient nano-vector for transfecting mesenchymal stem cells[J].Colloids Surf B:Biointerfaces,2014,122:115.
[23] Jing Hua;Zhongguang Wang;Jian Zhao .A facile approach to synthesize poly(4-vinylpyridine)/multi-walled carbon nanotubes nanocomposites: highly water-dispersible carbon nanotubes decorated with gold nanoparticles[J].Colloid and polymer science,2011(7):783-789.
[24] 朱朦琪,肖潭,郑伟玲,卫保娟,王堉,吴萍.混杂功能化碳纳米管/聚氨酯复合材料的制备及性能[J].材料研究学报,2012(02):191-198.
[25] R. Makvandi;A. OEchsner .On a numerical strategy to simulate nanotube-reinforced composite materials[J].Materialwissenschaft und Werkstofftechnik,2014(5):429-435.
[26] 高颖,潘莉.碳纳米管/聚合物基复合材料研究进展[J].材料导报,2014(01):59-63,78.
[27] 徐洪军,张启忠,PARK Soo-Jin,金范龙.多壁碳纳米管的功能化及其应用研究[J].弹性体,2012(01):38-41.
[28] Myung-Gon Kim;Jin-Bum Moon;Chun-Gon Kim .Effect of CNT functionalization on crack resistance of a carbon/epoxy composite at a cryogenic temperature[J].Composites, Part A. Applied science and manufacturing,2012(9):1620-1627.
[29] Lee J H;Rhee K Y;Park S J .Silane modification of carbon nanotubes and its effects on the material properties of carbon/CNT/epoxy three-phase composites[J].Composites Part A:Appl Sci Manufacturing,2011,42:478.
[30] Xu X M;Wang Z Y .Non-covalent dispersed carbon nanotube-benzocyclobutene composites as a bonding interface material for three-dimensional integration[J].Microelectronic Engineering,2012,91:33.
[31] Bessem Ben Doudou;Alexandre Vivet;Jun Chen;Abdelghani Laachachi;Thierry Falher;Christophe Poilane .Hybrid carbon nanotube—silica/ polyvinyl alcohol nanocomposites films: preparation and characterisation[J].Journal of Polymer Research,2014(4):420-1-420-9.
[32] Kondoh, K.;Fukuda, H.;Umeda, J.;Imai, H.;Fugetsu, B.;Endo, M. .Microstructural and mechanical analysis of carbon nanotube reinforced magnesium alloy powder composites[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2010(16/17):4103-4108.
[33] Moghaddam H K;Pakizeh M .Experimental study on mercury ions removal from aqueous solution by MnO2/CNTs nanocomposite adsorbent[J].Journal of Industrial and Engineering Chemistry,2014,21:221.
[34] Carpenter C R;Shipway P H;Zhu Y .Electrodeposition of nickel-carbon nanotube nanocomposite coatings for enhanced wear resistance[J].WEAR,2011,271(9):2100.
[35] Dai PQ;Xu WC;Huang QY .Mechanical properties and microstructure of nanocrystalline nickel-carbon nanotube composites produced by electrodeposition[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2008(0):172-174.
[36] Alain Peigney;Felipe Legorreta Garcia;Claude Estournes .Toughening and hardening in double-walled carbon nanotube/nanostructured magnesia composites[J].Carbon: An International Journal Sponsored by the American Carbon Society,2010(7):1952-1960.
[37] Yadhukulakrishnan, G.B.;Rahman, A.;Karumuri, S.;Stackpoole, M.M.;Kalkan, A.K.;Singh, R.P.;Harimkar, S.P..Spark plasma sintering of silicon carbide and multi-walled carbon nanotube reinforced zirconium diboride ceramic composite[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2012:125-133.
[38] Pasupuleti S;Peddetti R;Santhanarn S et al.Toughening behavior in a carbon nanotube reinforced silicon nitride composite[J].Mater Sci Eng A:Structural Materials Properties Microstructure and Processing,2008,491(1):224.
[39] Iftikhar Ahmad;Hongzhi Cao;Huahui Chen .Carbon nanotube toughened aluminium oxide nanocomposite[J].Journal of the European Ceramic Society,2010(4):865-873.
[40] Yi J;Wang T;Xie Z P et al.Zirconia-based nanocomposite toughened by functionalized multi-wall carbon nanotubes[J].Journal of Alloys and Compounds,2013,581:452.
[41] Mehdi Mazaheri;Daniele Mari;Zohreh Razavi Hesabi;Robert Schaller;Gilbert Fantozzi .Multi-walled carbon nanotube/nanostructured zirconia composites: Outstanding mechanical properties in a wide range of temperature[J].Composites science and technology,2011(7):939-945.
[42] V. Puchy;P. Hvizdos;J. Dusza .Wear resistance of Al_2O_3-CNT ceramic nanocomposites at room and high temperatures[J].CERAMICS INTERNATIONAL,2013(5):5821-5826.
[43] Jianbao Hu;Shaoming Dong;Bin Wu .Mechanical and thermal properties of Cf/SiC composites reinforced with carbon nanotube grown in situ[J].CERAMICS INTERNATIONAL,2013(3):3387-3391.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%