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Covalent Functionalization of Carbon Nanotube by Tetrasubtituted Amino Manganese Phthalocyanine 被引量:1

Covalent Functionalization of Carbon Nanotube by Tetrasubtituted Amino Manganese Phthalocyanine
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摘要 The multiwall carbon nanotube (MWCNT) bonded to 2, 9, 16, 23-tetraamino manganese phthalocyanine (TAMnPc) was obtained by covalent functionalization, and its chemical structure was characterized by TEM. The photoconductivity of single-layered photoreceptors, where MWCNT bonded by TAMnPc (MWCNT-b-TAMnPc) served as the charge generation material (CGM), was also studied. The multiwall carbon nanotube (MWCNT) bonded to 2, 9, 16, 23-tetraamino manganese phthalocyanine (TAMnPc) was obtained by covalent functionalization, and its chemical structure was characterized by TEM. The photoconductivity of single-layered photoreceptors, where MWCNT bonded by TAMnPc (MWCNT-b-TAMnPc) served as the charge generation material (CGM), was also studied.
出处 《Chinese Chemical Letters》 SCIE CAS CSCD 2004年第6期717-720,共4页 中国化学快报(英文版)
关键词 Multiwall carbon nanotube tetrasubstituted amino manganese phthalocyanine SYNTHESIZE covalent functionalization photoconductivity. Multiwall carbon nanotube, tetrasubstituted amino manganese phthalocyanine, synthesize, covalent functionalization, photoconductivity.
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  • 1[1]J. Liu, A. G. Rinzler, R. E. Smalley, et al., Science, 1998, 280, 1253.
  • 2[2](a) S. S. Wong, E. Joselevich, C. M. Lieber, et al., Nature, 1998, 394, 52, (b) S. S. Wong, A. T. Woolley, C. M. Lieber, et al., J. Am. Chem. Soc., 1998, 120, 8557.
  • 3[3]A. Dokoutchaev, J.T. James, S.C. Koene, Chem. Mater., 1999, 11, 2389.
  • 4[4]B. Star, J. F. Stoddart, D. Steuerman, et al., Angew. Chem., 2001, 113, 1721.
  • 5[5]R. J. Chen, Y. Zhang, D. Wang, H. Dai, J. Am. Chem. Soc., 2001, 123, 3838.

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  • 1佟拉嘎,蹇锡高,藤井彰彦,吉野胜美.烷基和烷氧基取代聚噻吩的合成、表征与光电性能[J].高分子学报,2004,14(5):628-633. 被引量:22
  • 2Sariaiftci N S,Smililowitz L,Heeger A J,et al.Photoinduced electron transfer from a conducting polymer to Buckminsterfullerene[J].Science,1992,258(5087):1474.
  • 3Morita S,Zakhidov A A,Yoshino K.Doping effect of Buckminstefullerene in conducting polymer:change of absorption spectrum and quenching of luminescence[J].Solid State Commun,1992,82(4):249.
  • 4Yu G,Gao J,Hummelen J C,et al.Solid-state dye-sensitized mesoporous TiO2 solar cells with high photon-to-electron conversion efficiencies[J].Science,1995,270(5243):1789.
  • 5Kim J Y,Lee K,Coates N E,et al.Efficient tandem polymer solar cells fabricated by all-solution processing[J].Science,2007,317(5835):222.
  • 6Yu G,Zhang C,Heeger A J.Dual-function semiconducting polymer devices:light-emitting and photodetecting diodes[J].Appl Phys Lett,1994,64(12):1540.
  • 7Tang C W.Two-layer organic photovoltaic cell[J].Appl Phys Lett,1986,48(2):l83.
  • 8Coakley K M,McGehee M D.Conjugated polymer photovoltaic[J].Chem Mater,2004,16(23):4533.
  • 9Spanggaard H,Krebs F C.A brief history of the development of organic and polymeric photovoltaics[J].Sol Energy Mater Sol Cells,2004,83(2-3):125.
  • 10Yang Z L,Pu H T,Wan D C,et al.Phthalocyanines-MWCNT hybrid materials:fabrication,aggregation and photoconductivity properties improvement[J].Chemical Physics Letters,2008,465(1-2):73.

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