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第 8 期 王桂霞,等: 酞菁类盘状液晶材料研究进展 ·1655·
electrodes[J]. Synthetic Metals, 2011, 161(17/18): 1996-2000. amorphous Se83Te15Zn2 thin film[J]. Bulletin of Materials Science,
[39] OHTA K, HATSUSAKA K, SUGIBAYASHI M, et al. Discotic liquid 2011, 34(7): 1351-1355.
crystalline semiconductors[J]. Molecular Crystals and Liquid Crystals, [53] DEMIRBAS U. Novel peripherally tetrasubstituted phthalocyanines:
2003, 397(1): 25-45. Synthesis, characterization, photophysical and photochemical
[40] BASOVA T V, PARKHOMENKO R G, IGUMENOV I K, et al. properties[J]. Journal of Molecular Structure, 2020, 1211: 128082.
Composites of liquid crystalline nickel phthalocyanine with gold [54] ZHANG Y Y, ZHOU Q, BU Y C, et al. Real-time imaging
nanoparticles: Liquid crystalline behaviour and optical properties[J]. mitochondrial viscosity dynamic during mitophagy mediated by
Dyes and Pigments, 2014, 111: 58-63. photodynamic therapy[J]. Analytica Chimica Acta, 2021, 1178: 338847.
[41] JIMENEZ-TEJADA J A, ROMERO A, GONZALEZ J, et al. [55] RAO R J, PRABHU S, SRIRANGARAJAN S, et al. Influence of
Evolutionary computation for parameter extraction of organic thin- antibacterial effects of tetracycline, laser, and photodynamic therapy
film transistors using newly synthesized liquid crystalline nickel on cell viability, cell damage, and virulence of porphyromonas
phthalocyanine[J]. Micromachines, 2019, 10(10): 683-709. gingivalis[J]. Photodiagnosis and Photodynamic Therapy, 2021, 36:
[42] YU Z F, WANG L Y, MU X J, et al. Intramolecular electric field 102617.
construction in metal phthalocyanine as dopant-free hole transporting [56] CZARNECKA-CZAPCZYNSKA M, AEBISHER D, OKLES P,
material for stable perovskite solar cells with>21% efficiency[J]. et al. The role of photodynamic therapy in breast cancer-A review of
Angewandte Chemie International Edition, 2021, 60(12): 6294-6299. in vitro research[J]. Biomedicine & Pharmacotherapy, 2021, 144: 112342.
[43] MURALI K M, BASKARAN S, ARUMUGHAM M N. Photophysical [57] DEMIRBAS U, OZTURK D, AKCAYk H T, et al. Metallo-
properties and theoretical photosensitization mechanism of phthalocyanines containing triazole substituents: Synthesis, spectroscopic
non-peripherally dodecyloxy substituted metallophthalocyanines for and photophysicochemical properties[J]. Journal of Coordination
photodynamic therapy[J]. Inorganic and Nano-Metal Chemistry, Chemistry, 2022, 75(5/6): 1-8.
2021, 51(9): 1165-1176. [58] HUANG X S, HU M, ZHAO X H, et al. Subphthalocyanine
[44] APOSTOL P, BENTALEB A, RAJAOARIVELO M, et al. Regiospecific triimides: Solution processable bowl-shaped acceptors for bulk
synthesis of tetrasubstituted phthalocyanines and their liquid heterojunction solar cells[J]. Organic Letters, 2019, 21(9): 3382-3386.
crystalline order[J]. Dalton Transactions, 2015, 44(12): 5569-5576. [59] GOTFREDSEN H, HOLMSTROM T, MUNOZ A V, et al.
[45] MELO E B, ECCHER J, APOSTOL P, et al. Characterization of Complexation of fullerenes by subphthalocyanine dimers[J]. Organic
liquid crystalline phthalocyanines for OFET applications[J]. Molecular Letters, 2018, 20(18): 5821-5825.
Crystals and Liquid Crystals, 2017, 657(1): 81-88. [60] BRESSAN G, CAMMIDGE A N, JONES G A, et al. Electronic
[46] GODBERT N, CRISPINI A, GHEDINI M, et al. LCDiXRay: A energy transfer in a subphthalocyanine-Zn porphyrin dimer studied
user-friendly program for powder diffraction indexing of columnar by linear and nonlinear ultrafast spectroscopy[J]. The Journal of
liquid crystals[J]. Journal of Applied Crystallography, 2014, 47(2): Physical Chemistry A, 2019, 123(27): 5724-5733.
668-679. [61] JOSEY D S, INGRAM G L, GARNRE R K, et al. Outdoor stability
[47] KAWANO S, YAMADA Y, RONGFAN S, et al. Liquid-crystalline of chloro-(chloro) n-boron subnaphthalocyanine and chloro-boron
phthalocyanine with short intercolumnar distance and variation of the subphthalocyanine as electron acceptors in bilayer and trilayer
liquid crystallinity induced by square-planar metal ions[J]. Chemistry organic photovoltaics[J]. ACS Applied Energy Materials, 2019, 2(2):
Letters, 2018, 47(10): 1262-1264. 979-986.
[48] BECHTOLD I H, ECCHER J, FARIA G C, et al. New columnar [62] LI Z, WANG B, ZHANG B B, et al. Synthesis, characterization and
Zn-phthalocyanine designed for electronic applications[J]. The optoelectronic property of axial-substituted subphthalocyanines[J].
Journal of Physical Chemistry B, 2012, 116(45): 13554-13560. Chemistry Open, 2020, 9(10): 1001-1007.
[49] TATAROGLU A, KORAN K, CALISKAN E, et al. Metallo- [63] ZHANG C, NAKANO K, NARKAMURA M, et al. Noncentrosymmetric
phthalocyanines based photocapacitors[J]. Silicon, 2019, 11(3): columnar liquid crystals with the bulk photovoltaic effect for organic
1275-1286. photodetectors[J]. Journal of the American Chemical Society, 2020,
[50] TATAROGLU A, DAYAN O, OZDEMIRZD N, et al. Single crystal 142(7): 3326-3330.
ruthenium (Ⅱ) complex dye based photodiode[J]. Dyes and Pigments, [64] LEHMANN M, BAUMANN M, LAMBOY M, et al. Parallel polar
2016, 132: 64-71. dimers in the columnar self-assembly of umbrella-shaped subphthalocyanine
[51] OCAYA R O, AL-SEJEMI A G, AL-GHAMDI A, et al. Organic mesogens[J]. Advanced Functional Materials, 2021, 31(38): 2104217.
semiconductor photosensors[J]. Journal of Alloys and Compounds, [65] MA F, ZHANG G J, WU X M, et al. High-sensitivity green photodetectors
2017, 702: 520-530. using subphthalocyanine derivatives as photoactive donors[J]. The
[52] SHUKLA S, KUMAR S. Photoconductivity and high-field effects in Journal of Physical Chemistry C, 2022, 126(31): 13496-13504.