Calvert P. Strength in disunity[J]. Nature, 1992, 357(4): 365-366.
[2]
Calvert P. A recipe for strength[J]. Nature, 1999, 399(20): 210-211.
[3]
Wong E W, Sheehan P E, Lieber C M. Nanobeam mechanics: elasticity, strength, and toughness of nanorods and nanotubes[J]. Science, 1997, 277(26): 1971-1975.
[4]
Ajayan P M,Iijima S.Capillarity-induced filling of carbon nanotubes[J]. Nature, 1993, 361(6410): 333-334.
[5]
Ebbesen T W, Ajayan P M. Large-scale synthesis of carbon nanotubes . Nature, 1992, 358(6383): 220.
[6]
Li B,Cao T B,Cao W X,et al.Self-assembly of single-walled carbon nanotube based on diazoresin[J]. Synthetic Metals, 2003, 132(1): 5-8.
[7]
Kumar S, Dang T D, Arnold F E, et al. Synthesis, stru-cture, and properties of PBO/SWNT composites[J]. Macromolecules, 2002, 35: 9039-9043.
[8]
Hassanien A, Gao M, Tokumoto M, et al. Scanning tunne-ling microscopy of aligned nanowires of polyaniline carbon nanotubes[J]. Chemical Physics Letters, 2001, 342: 479-484.
[9]
Dalton A B, Byrne H J, Coleman J N, et al. Optical ab-sorption and fluorescence of multi-walled nanotube-polymer composite[J] Synthetic Metals, 1999, 102(1-3): 1176-1177.
[10]
Spinks G M, Wallace G G, Liu L, et al. Conducting polymers and carbon nanotubes as electromechanical actuators and strain sensors[J]. Materials Research Society Symposium Proceedings, 2001, 698: 5-16.
[11]
Musa I, Baxendale M, Amaratunga G A J, et al. Properties of regioregular poly(3-octylthiophene)/multi-wall carbon nanotube composites[J]. Synthetic Metals, 1999, 102: 1250.
[12]
Shirakawa H, Louis E J, MacDiarmid A G, et al. Synthesis of electrically conducting organic polymers: Halogen derivatives of polyacetylene, (CH)x[J]. J Chem Sco Chem Commun, 1977, 578-588.
[13]
朱道本,王佛松. 有机固体[M]. 上海:上海科学技术出版社,1999. 89-92.
[14]
Cao Y, Qiu J, Smith P. Effect of solvents and co-solvents on the processibility of polyanilineⅠ:Solubility and conductivity studies[J]. Synthetic Metals, 1995, 69: 187-190.
Iijima S. Helical microtubules of graphitic carbon[J]. Nature, 1991, 354(7): 56-58.
[17]
Kaneto K, Tsuruta M, Sakai G, et al. Electrical conductivi-ties of multi-wall carbon nano tubes[J]. Synthetic Metals, 1999, 103(1-3): 2543-2546.
[18]
Collins P G, Zettl A, Bando H, et al. Nanotube nanodevice[J]. Science, 1997, 278(3): 100-103.
[19]
El-Hami K, Rühle M. A bending angle of 180° of single walled carbon nanotubes: Novel high resolution electron microscopy observations[J]. Synthetic Metals, 2003, 132(2): 123-124.
[20]
Curran S, Davey A P, Coleman J, et al. Evolution and eva- luation of the polymer/nanotube composite[J]. Synthetic Metals, 1999, 103(1-3): 2559-2562.
[21]
Fan J H, Wan M X, Zhu D B, et al. Synthesis, characteriza-tions, and physical properties of carbon nanotubes coated by conducting polypyrrole[J]. Journal of Applied Polymer Science, 1999, 74: 2605-2610.
[22]
Ding Y,Padias A B,Hall H K.Chemical trapping experiments support a cation-radical mechanism for the oxidative polymeri- zation of aniline[J].Journal of Polymer Science Part A: Polymer Chemistry,1999,37:2569-2579.
[23]
Dhawan S K, Kumar D, Ram M K, et al. Application of conducting polyaniline as sensor material for ammonia[J]. Sensors and Actuators B, 1997, 40(2-3): 99-103.
[24]
Mazeikiene R,Malinauskas A.Deposition of polyaniline by an-tocatalytic oxidation of aniline with dichromate[J]. Synthetic Metals, 2000, 108: 9-14.
[25]
Johnson B J, Park S M. Electrochemistry of conductive poly-mers, XX. Early stages of aniline polymerization studied by spectroelectrochemical and rotating ring disk electrode techniques[J]. Journal of the Electrochemical Society, 1996, 143(4): 1277-1282.