Journal of Synthetic Crystals, Volume. 52, Issue 4, 678(2023)
Research Progress of Metal Phthalocyanine Crystals Synthesized by Solvothermal Method
[1] [1] SOROKIN A B, KUDRIK E V. Phthalocyanine metal complexes: versatile catalysts for selective oxidation and bleaching[J]. Catalysis Today, 2011, 159(1): 37-46.
[3] [3] URBANI M, RAGOUSSI M E, NAZEERUDDIN M K, et al. Phthalocyanines for dye-sensitized solar cells[J]. Coordination Chemistry Reviews, 2019, 381: 1-64.
[4] [4] DECHANT M, LEHMANN M, UZURANO G, et al. The liquid crystal click procedure for oligothiophene-tethered phthalocyanines-self-assembly, alignment and photocurrent[J]. Journal of Materials Chemistry C, 2021, 9(17): 5689-5698.
[5] [5] LINDSEY J S, BOCIAN D F. Molecules for charge-based information storage[J]. Accounts of Chemical Research, 2011, 44(8): 638-650.
[6] [6] SOROKIN A B. Phthalocyanine metal complexes in catalysis[J]. Chemical Reviews, 2013, 113(10): 8152-8191.
[7] [7] RAK J, POUCKOVA P, BENES J, et al. Drug delivery systems for phthalocyanines for photodynamic therapy[J]. Anticancer Research, 2019, 39(7): 3323-3339.
[10] [10] JIANG H, HU P, YE J, et al. Molecular crystal engineering: tuning organic semiconductor from p-type to n-type by adjusting their substitutional symmetry[J]. Advanced Materials, 2017, 29(10): 1605053.
[11] [11] MELVILLE O A, LESSARD B H, BENDER T P. Phthalocyanine-based organic thin-film transistors: a review of recent advances[J]. ACS Applied Materials & Interfaces, 2015, 7(24): 13105-13118.
[13] [13] MRUTHUNJAYAPPA M H, KOTRAPPANAVAR N S, MONDAL D. New prospects on solvothermal carbonisation assisted by organic solvents, ionic liquids and eutectic mixtures-A critical review[J]. Progress in Materials Science, 2022, 126: 100932.
[14] [14] LAI J P, NIU W X, LUQUE R, et al. Solvothermal synthesis of metal nanocrystals and their applications[J]. Nano Today, 2015, 10(2): 240-267.
[16] [16] XIA D C, YU S K, SHEN R S, et al. A novel method for the direct synthesis of crystals of copper phthalocyanine[J]. Dyes and Pigments, 2008, 78(1): 84-88.
[17] [17] DEFEYT C, VANDENABEELE P, GILBERT B, et al. Contribution to the identification of α-, β- and ε-copper phthalocyanine blue pigments in modern artists' paints by X-ray powder diffraction, attenuated total reflectance micro-Fourier transform infrared spectroscopy and micro-Raman spectroscopy[J]. Journal of Raman Spectroscopy, 2012, 43(11): 1772-1780.
[18] [18] SAADATI ARDESTANI N, SODEIFIAN G, ALI SAJADIAN S. Preparation of phthalocyanine green nano pigment using supercritical CO2 gas antisolvent (GAS): experimental and modeling[J]. Heliyon, 2020, 6(9): e04947.
[19] [19] GE S X, ZHANG Y G, HUANG B J, et al. Synthesis of highly crystalline copper phthalocyanine needles by solvothermal method[J]. Materials Letters, 2016, 163: 61-64.
[20] [20] JIANG H, YE J, HU P, et al. Fluorination of metal phthalocyanines: single-crystal growth, efficient N-channel organic field-effect transistors, and structure-property relationships[J]. Scientific Reports, 2014, 4: 7573.
[21] [21] JIANG H, HU P, YE J, et al. Hole mobility modulation in single-crystal metal phthalocyanines by changing the metal-π/π-π interactions[J]. Angewandte Chemie, 2018, 57(32): 10112-10117.
[22] [22] SANTHOSHI KIRAN K S, PREETHI V, KUMAR S. A brief review of organic solar cells and materials involved in its fabrication[J]. Materials Today: Proceedings, 2022, 56: 3826-3829.
[23] [23] LESSARD B H. The rise of silicon phthalocyanine: from organic photovoltaics to organic thin film transistors[J]. ACS Applied Materials & Interfaces, 2021, 13(27): 31321-31330.
[24] [24] RUTTER H A, MCQUEEN J D. Synthesis of 52Mn and 74As labelled phthalocyanines[J]. Journal of Inorganic and Nuclear Chemistry, 1960, 12(3/4): 361-363.
[25] [25] LI D P, GE S X, SUN G F, et al. A novel and green route for solvothermal synthesis of manganese phthalocyanine crystals[J]. Dyes and Pigments, 2015, 113: 200-204.
[26] [26] GUO Z C, CHEN B, ZHANG M Y, et al. Zinc phthalocyanine hierarchical nanostructure with hollow interior space: solvent-thermal synthesis and high visible photocatalytic property[J]. Journal of Colloid and Interface Science, 2010, 348(1): 37-42.
[27] [27] LI D P, GE S X, YUAN T C, et al. Green synthesis and characterization of crystalline zinc phthalocyanine and cobalt phthalocyanine prisms by a simple solvothermal route[J]. CrystEngComm, 2018, 20(19): 2749-2758.
[29] [29] LIU T T, ZHANG F Y, RUAN L X, et al. Facile synthesis and characterization of crystalline iron phthalocyanine[J]. Materials Letters, 2019, 237: 319-322.
[30] [30] LI D P, ZHANG P, GE S X, et al. A green route to prepare metal-free phthalocyanine crystals with controllable structures by a simple solvothermal method[J]. RSC Advances, 2021, 11(50): 31226-31234.
[31] [31] ZHANG M Y, SHAO C L, GUO Z C, et al. Highly efficient decomposition of organic dye by aqueous-solid phase transfer and in situ photocatalysis using hierarchical copper phthalocyanine hollow spheres[J]. ACS Applied Materials & Interfaces, 2011, 3(7): 2573-2578.
[32] [32] MU J B, SHAO C L, GUO Z C, et al. Solvothermal synthesis and electrochemical properties of 3D flower-like iron phthalocyanine hierarchical nanostructure[J]. Nanoscale, 2011, 3(12): 5126-5131.
[33] [33] GUO Z C, CHEN B, MU J B, et al. Iron phthalocyanine/TiO2 nanofiber heterostructures with enhanced visible photocatalytic activity assisted with H2O2[J]. Journal of Hazardous Materials, 2012, 219/220: 156-163.
[34] [34] ZHANG M Y, SHAO C L, GUO Z C, et al. Hierarchical nanostructures of copper(II) phthalocyanine on electrospun TiO2 nanofibers: controllable solvothermal-fabrication and enhanced visible photocatalytic properties[J]. ACS Applied Materials & Interfaces, 2011, 3(2): 369-377.
[35] [35] GUO X H, ZHOU X J, LI X H, et al. Bismuth oxychloride (BiOCl)/copper phthalocyanine (CuTNPc) heterostructures immobilized on electrospun polyacrylonitrile nanofibers with enhanced activity for floating photocatalysis[J]. Journal of Colloid and Interface Science, 2018, 525: 187-195.
[36] [36] GUO Z C, SHAO C L, ZHANG M Y, et al. Dandelion-like Fe3O4@CuTNPc hierarchical nanostructures as a magnetically separable visible-light photocatalyst[J]. Journal of Materials Chemistry, 2011, 21(32): 12083-12088.
Get Citation
Copy Citation Text
LI Dapeng, SUN Guofu, GE Suxiang. Research Progress of Metal Phthalocyanine Crystals Synthesized by Solvothermal Method[J]. Journal of Synthetic Crystals, 2023, 52(4): 678
Category:
Received: Nov. 28, 2022
Accepted: --
Published Online: Jun. 11, 2023
The Author Email: LI Dapeng (lidapengabc@126.com)
CSTR:32186.14.