• Frontiers of Optoelectronics
  • Vol. 9, Issue 1, 99 (2016)
Baoming LI*, Enkai PENG, Leilei YE, and Zhiyin WU
Author Affiliations
  • College of Material Science and Engineering, Fuzhou University, Fuzhou 350108, China
  • show less
    DOI: 10.1007/s12200-015-0519-6 Cite this Article
    Baoming LI, Enkai PENG, Leilei YE, Zhiyin WU. Synthesis and optical properties of soluble low bandgap poly(pyrrole methine) with alkoxyl substituen[J]. Frontiers of Optoelectronics, 2016, 9(1): 99 Copy Citation Text show less
    References

    [1] Sauteret C, Hermann J P, Frey R, Pradere F, Ducuing J, Baughman R H, Chance R R. Optical nonlinearities in one-dimensionalconjugated polymer crystals. Physical Review Letters, 1976, 36(16): 956–959

    [2] Wu C G, Lu M I, Chang S J, Wei C S. A solution-processable highcoloration- efficiency low-switching-voltage electrochromic polymer based on polycyclopentadithiophene. Advanced Functional Materials, 2007, 17(7): 1063–1070

    [3] Mishra A, Ram S. Selective light emission in nonbonding electron transitions in poly(vinyl pyrrolidone) molecules on spin-coating in thin layers. Journal of Physical Chemistry A, 2009, 113(51): 14067– 14073

    [4] Liu N, Ruseckas A, Montgomery N A, Samuel I D W, Turnbull G A. Semiconducting polymer waveguides for end-fired ultra-fast optical amplifiers. Optics Express, 2009, 17(24): 21452–21458

    [5] Yi W, Feng W, Cao M, Wu H. Synthesis of third-order non-linear optical polymers based on conjugated poly(heteroarylene methines). Polymers for Advanced Technologies, 2004, 15(7): 431–438

    [6] Yan W, Wei Z X, Hsu C S, Wan M X. Synthesis of microspheres of poly (pyrrolyl methine) by interfacial polymerization. Synthetic Metals, 2003, 135–136: 213–214

    [7] Li B, Ye L, Peng E, Tan Z. Synthesis, conductivity and photophysical properties of soluble low bandgap poly{(3-butyryl) pyrrole-[2,5-diyl(p-hydroxybenzylidene)]}. Synthetic Metals, 2015, 202: 33–38

    [8] Costa-Bizzarri P, Della-Casa C, Lanzi M, Bertinelli F, Iarossi D, Mucci A, Schenetti L. Spectroscopic comparison between poly[3- (6-methoxyhexyl)thiophene]s with different steric hindrance. Synthetic Metals, 1999, 104(1): 1–7

    [9] El-Badry B A, Zaki M F, Abdul-Kader A M, Hegazy T M, Morsy A A. Ion bombardment of poly-allyl-diglycol-carbonate (CR-39). Vacuum, 2009, 83(8): 1138–1142

    [10] Beata D Z, Yu L W, David F, Trevor M B, Angela B S. Optical characterization of Er3+-doped oxyfluoride glasses and nano-glassceramics. Materials Letters, 2014, 136: 233–236

    [11] Janardhana K, Ravindrachary V, Rajesh Kumar P C, Ismayil. Investigation of third-order nonlinear optical properties of pyrazoline- doped polyvinyl alcohol films. Polymer Engineering and Science, 2013, 53(9): 1958–1967

    [12] Arslan M, Duymus H, Yakuphanoglu F. Optical properties of the poly(N-benzylaniline) thin film. Journal of Physical Chemistry B, 2006, 110(1): 276–280

    [13] Xuan N P, Ferrier J L, Gazengel J, Rivoire G. Picosecond measurements of the third order susceptibility tensor in liquids. Optics Communications, 1984, 51(6): 433–437

    [14] Wu J, Yan J, Sun D, Li F, Zhou L, Sun M. Third-order nonlinear optical property of a polyphenylene oligomer: poly(2,5-dialkozyphenylene). Optics Communications, 1997, 136(1–2): 35–38

    [15] Zhou L K, Liu Q, Zhao X, Hu F L, Liu S C, Ren Z G, Sun Z R, Lang J P. Six [Tp*WS3Cu2]-based clusters derived from [Et4N] [Tp*WS3], Cu(I) salts and phosphine ligands: syntheses, structures and enhanced third-order NLO properties. Dalton Transactions (Cambridge, England), 2014, 43(12): 4734–4744

    [16] Ren Z G, Sun S, Dai M, Wang H F, Lü C N, Lang J P, Sun Z R. Assembly of bicyclic or monocyclic clusters from [(η5- C5Me5)2Mo2(μ3-S)4(CuMeCN)2]2+ with tetraphosphine or N,P mixed ligands: syntheses, structures and enhanced third-order NLO performances. Dalton Transactions (Cambridge, England), 2011, 40(33): 8391–8398

    [17] Zhang W H, Song Y L, Zhang Y, Lang J P. Binuclear cluster-tocluster- based supramolecular compounds: design, assembly, and enhanced third-Order nonlinear optical performances of {[Et4N]2[- MoOS3Cu2(μ-CN)]2$2aniline}n and {[Et4N]4[MoOS3Cu3CN(μ′- CN)]2(μ-CN)2}n. Crystal Growth & Design, 2008, 8(1): 253–258

    [18] Chen X, Li H X, Zhang Z Y, Zhao W, Lang J P, Abrahams B F. Activation and amplification of the third-order NLO and luminescent responses of a precursor cluster by a supramolecular approach. Chemical Communications, 2012, 48(37): 4480–4482

    [19] Hattori Y, Mizoguchi A, Uemiya T, Tanaka G. Epitaxially grown polydiacetylene thin films and their nonlinear optical properties. Molecular Crystals and Liquid Crystals Science and Technology Section B: Nonlinear Optics, 1995, 13(1–3): 73–82

    [20] Sinclair M, Moses D, Heeger A J, Vilhelmsson K, Valk B, Salour M. Measurement of the third order susceptibility of trans-polyacetylene by third harmonic generation. Solid State Communications, 1987, 61(4): 221–225

    [21] Keuren E V, Belov V, Schrof W, Mayer E, Rozouvan S, Saitoh H, Hartmann T, Hwald H. Third order nonlinear optical properties of novel polythiophene derivatives. Molecular Crystals and Liquid Crystals Science and Technology Section A: Molecular Crystals and Liquid Crystals, 1997, 294 (1): 287–290

    [22] Ando M, Matsuda H, Okada S, Nakanishi H, Iyoda T, Shimidzu T. Optical third-harmonic generation in polyaniline cast films. Polymer Journal, 1993, 25(4): 417–420

    [23] Li B, Cheng L, Zheng Y. Conductive and optical properties of PPV modified by N+ ion implantation. Journal of Polymer Science Part B, Polymer Physics, 2010, 48(19): 2072–2077

    Baoming LI, Enkai PENG, Leilei YE, Zhiyin WU. Synthesis and optical properties of soluble low bandgap poly(pyrrole methine) with alkoxyl substituen[J]. Frontiers of Optoelectronics, 2016, 9(1): 99
    Download Citation