Chinese Journal of Lasers, Volume. 36, Issue 8, 1909(2009)

Phthalocyanine-Based Optical Limiting Functional Materials

He Nan1、*, Chen Yu1, Liu Ying1, Feng Miao1,2, Hu Zheng1, and Gao Lili1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • show less
    References(41)

    [5] [5] Y.Chen, M. E. EI-Khouly, J. J. Doyle et al.. Phthalocyanines and Related Compounds: Nonlinear Optical Response and Photoinduced Electron Transfer Process[M]. Handbook of Organic Electronics and Photonics, American Scientific Publishers, Stevenson Ranch, California, USA, 2008, 2: 151~181

    [6] [6] Y. Chen, M. Hanack, Y. Araki et al.. Axially modified gallium phthalocyanines and naphthalocyanines for optical limiting [J]. Chem. Soc. Rev., 2005, 34(6): 517~529

    [7] [7] A. Krivokapic, H. L. Anderson, G. Bourhill et al.. Meso-tetra-alkynyl porphyrins for optical limiting-a survey of group Ⅲ and Ⅳ metal complexes [J]. Adv. Mater., 2001, 13(9): 652~656

    [9] [9] G. J. Zhou, W. Y. Wong, C. Ye et al.. Optical power limiters based on colorless di-,oligo-,and polymetallaynes:highly transparent materials for eye protection devices[J]. Adv. Funct. Mater., 2007, 17: 963~975

    [10] [10] L. Smilowitz, D. McBranch, V. Klimo et al.. Enhanced optical limiting in derivatized fullerenes [J]. Opt. Lett., 1996, 21(13): 922~924

    [11] [11] H. S. Nalwa, J. S. Shirk. Phthalocyanines: Properties and Applications[M]. Eds Leznoff, C. C.; Lever, A. B. P.,VCH Publishers, Inc., New York ,1996

    [12] [12] C. W. Spangler. Recent development in the design of organic materials for optical power limiting[J]. J. Mater. Chem., 1999, 9: 2013~2020

    [13] [13] J. J. Doyle, B. Ballesteros, G. Torre et al.. Combination of phthalocyanine and fullerene moieties for optical limiting [J]. Chem. Phys. Lett., 2006, 428: 307~311

    [14] [14] G. Torre, P. Vazquez, F. Agullo-Lopez et al.. Role of structural factors in the nonlinear optical properties of phthalocyanines and related compounds[J]. Chem. Rev., 2004, 104: 3723~3750

    [15] [15] M. Calvete, G. Y. Yang, M. Hanack. Porphyrins and phthalocyanines as materials for optical limiting[J]. Synth. Met., 2004, 141: 231~243

    [16] [16] N. B. Mckeown. Phthalocyanine Materials: Synthesis, Structure and Function[M]. Cambridge University Press, 1998

    [17] [17] A. Braun, J. Tchemiac. Phthalocyanines: Synthesis[J]. J. Chem. Ber., 1907, 40: 2709~2718

    [18] [18] M. Sommerauer, C. Rager, M. Hanack. Separation of 2(3), 9(10), 16(17), 23(24)-tetra substituted phthalocyanines with newly developed HPLC phases [J]. J. Am. Chem. Soc., 1996, 118(42): 10085~10093

    [19] [19] Z. Z. Ho, C. Y. Ju, W. M. Hetherington Ⅲ. Third harmonic generation in phthalocyanines [J]. J. Appl. Phys., 1987, 62(2): 716~718

    [20] [20] C. Y. Ju, W. M. Hetherington Ⅲ, D. R. Coulter et al.. Optical limiting in solution of metallophthalocyanines and naphthalocyanines [C]. SPIE, 1989, 1105: 42~46

    [21] [21] M. Hanack, T. Schneider, M. Batrthel et al.. Indium phthalocyanines and naphthalocyanines for optical limiting [J]. Coord. Chem. Rev., 2001, 219-221: 235~258

    [22] [22] Q. M. Tian, S. Yanagi, K. Sasak et al.. Syntheses and nonlinear optical properties of nonaggregated metallophthalocyanines [J]. J. Opt. Soc. Am. B., 1998, 15(2): 846~853

    [23] [23] P. A. Miles. Bottleneck optical limiters: the optimal use of excited-state absorbers [J]. Appl. Opt., 1994, 33(30): 6965~6979

    [24] [24] F. Henari, A. Davey, W. J. Blau et al.. The electronic and non-linear optical properties of oxo-titanium phthalocyanines [J]. J. Porph. Phthal., 1999, 3(5): 331~338

    [25] [25] D. Dini, M. Barthel, T. Schneider. Phthalocyanines and related compounds as switchable materials upon strong irradiation: the molecular engineering behind the optical limiting effect [J]. Sol. St. Ionics., 2003, 165: 289~293

    [26] [26] J. S. Shirk, R. G. S. Pong, S. R. Flom et al.. Effect of axial substitution on the optical limiting properties of indium phthalocyanines [J]. J. Phys. Chem. A, 2000, 104: 1438~1449

    [27] [27] H. Heckmann. New dyes for optical limiting: indium phthalocyanines and naphthalocyanines[D]. Tuebingen:Tuebingen University, 1999

    [28] [28] Y. Chen, M. Barthel, M. Seiler et al.. An axially bridged indium phthalocyanine dimer with an In-In bond [J]. Angew. Chem. Int. Ed. Engl., 2002,41: 3239~3242

    [29] [29] Y. Chen, M. Fujitsuka, S. M. O’Flaherty et al.. Strong optical limiting of soluble axially substituted gallium and indium phthalocyanines [J]. Adv. Mater., 2003, 15(11): 899~902

    [30] [30] Y. Chen, D. Dini, M. Hanack et al.. Excited state properties of monomeric and dimeric axially bridged indium phthalocyanines upon UV-Vis laser irradiation [J]. Chem. Commun., 2004, 3: 340~341

    [31] [31] Y. Chen, L. R. Subramanian, M. Fujitsuka et al.. Synthesis and optical limiting properties of axially bridged phthalocyanines: [tBu4PcGa]2O and [tBu4PcIn]2O[J]. Chem. Eur. J., 2002, 8(18): 4248~4254

    [32] [32] Y. Chen, L. R. Subramanian, M. Barthel et al.. Synthesis and characterization of soluble axially substituted tetra-(tertbutyl) gallium(Ⅲ)phthalocyanines [J]. Eur. J. Inorg. Chem., 2002, 1032~1034

    [33] [33] Y. Chen, S. M. O′ Flaherty, M. Hanack et al.. Synthesis and optical limiting properties of new axially aryloxy substituted gallium phthalocyanines[J]. J. Mater. Chem., 2003, 13(10): 2405~2408

    [34] [34] H. Bertagnolli, W. J. Blau, Y. Chen et al.. Synthesis, characterization and optical limiting properties of a gallium phthalocyanine dimer[J]. J. Mater. Chem., 2005, 15(6): 683~689

    [35] [35] M. Barthel, M. Hanack. Axially substituted titanium (IV) phthalocyanines[J]. J. Porph. Phthal., 2000, 4: 635~638

    [36] [36] D. Dini, M. Barthel, M. Hanack. Phthalocyanines as active materials for optical limiting [J]. Eur. J. Org. Chem., 2001, 20: 3759~3769

    [37] [37] Y. Chen, M. E. EI-Khouly, M. Sasaki et al.. Synthesis of the axially substituted titanium Pc-C60 dyad with a convenient method[J]. Org. Lett., 2005, 7(8): 1613~1616

    [38] [38] H. S. Nalwa, A. Kakuta, A. Muko. Third-order nonlinear optical properties of a vanadyl naphthalocyanine derivative[J]. J. Phys. Chem., 1993, 97(6): 1097~1100

    [39] [39] G. Y. Yang, M. Hanack, Y. W. Lee et al.. Synthesis and nonlinear optical properties of fluorine-containing naphthalocyanines[J]. Chem. Eur. J., 2003, 9(12): 2758~2762

    [40] [40] D. Dini, M. J. F. Calvete, M. Hanack. Nonlinear transmission of a tetrabrominated naphthalocyaninato indium chloride[J]. J. Phy. Chem. B., 2006, 110: 12230~12239

    [41] [41] W. F. Sun, G. Wang, Y. J. Li. Axial halogen ligand effect on photophysics and optical power limiting of some indium naphthalocyanines[J]. J. Phys. Chem. A., 2007, 111: 3263~3270

    CLP Journals

    [1] Cheng Kun, Zhao Junpu, Hu Dongxia, Dai Wanjun, Yuan Qiang, Zhou Wei, Zhang Xin, Deng Wu, Jiang Xuejun, Zhang Kun, Zhang Xiaomin, Jing Feng. Dynamic Response Characteristics of Super-Gaussian Pulse to Reverse Saturable Absorption Effect[J]. Chinese Journal of Lasers, 2012, 39(2): 202002

    [2] Wang Xiaomei, Luo Jianfang, Wang Xiaohong, Tao Xutang. Optical Limiting of Triphenylamine-Based Chromophores Containing Dibenzothiophene[J]. Chinese Journal of Lasers, 2010, 37(10): 2599

    Tools

    Get Citation

    Copy Citation Text

    He Nan, Chen Yu, Liu Ying, Feng Miao, Hu Zheng, Gao Lili. Phthalocyanine-Based Optical Limiting Functional Materials[J]. Chinese Journal of Lasers, 2009, 36(8): 1909

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category: reviews

    Received: May. 6, 2008

    Accepted: --

    Published Online: Aug. 13, 2009

    The Author Email: Nan He (henansci@gmail.com)

    DOI:

    Topics