Araştırma Makalesi

Electroanalytical characterization of chloroquinoline substituted redox-active phthalocyanines

Cilt: 5 Sayı: 1 30 Haziran 2023
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Electroanalytical characterization of chloroquinoline substituted redox-active phthalocyanines

Öz

In the first part of this study, the synthesis and characterization of organosoluble 5-chloroquinolin-8-yloxy substituted iron(II) (2) and oxo-titanium (IV) phthalocyanines (3) are reported for the first time. These compounds have been characterized by elemental analysis, Fourier transform infrared, electronic spectroscopy, and mass spectra. Electrochemical behaviors of metal-free and cobalt phthalocyanines and further new types of iron and oxo-titanium phthalocyanines were investigated using electroanalytical methods, such as cyclic (CV) and square wave voltammetry (SWV). According to the electrochemical results, phthalocyanines by and large showed one-electron metal- and/or ligand-based reversible or quasi-reversible reduction and oxidation processes. All in all, this study's results inevitably create a useful way to use them in possible future studies, which will particularly attempt to use the compound investigated in potential areas of use.

Anahtar Kelimeler

Destekleyen Kurum

KARADENİZ TEKNİK ÜNİVERSİTESİ BİLİMSEL ARAŞTIRMA FONU

Proje Numarası

FHD-2018-7631

Teşekkür

This study was supported by the Karadeniz Technical University Research Fund, Project No: FHD-2018-7631 (Trabzon-Turkey).

Kaynakça

  1. A. Suzuki, H. Okumura, Y. Yamasaki, T. Oku, Fabrication and characterization of perovskite type solar cells using phthalocyanine complexes, Appl Surf Sci, 488, 2019, 586-596 (https://doi.org/10.1016/j.apsusc.2019.05.305)
  2. J. Xu, W. Yang, R. Chen, The photovoltaic performance of highly asymmetric phthalocyanine-sensitized brookite-based solar cells, Optik, 200, 2020, 163413. (https://doi.org/10.1016/j.ijleo.2019.163413)
  3. B. Yıldız, E. Güzel, D. Akyüz, B.S. Arslan, A. Koca, M.K. Şener, Unsymmetrically pyrazole-3-carboxylic acid substituted phthalocyanine-based photoanodes for use in water splitting photoelectrochemical and dye-sensitized solar cells, Sol Energy, 191, 2019, 654-662. (https://doi.org/10.1016/j.solener.2019.09.043)
  4. S. Kong, X. Wang, L. Bai, Y. Song, F. Meng, Multi-arm ionic liquid crystals formed by pyridine-mesophase and copper phthalocyanine, J Mol Liq, 288, 2019, 111012. (https://doi.org/10.1016/j.molliq.2019.111012)
  5. J.A. Jiménez-Tejada, A. Romero, J. González, N.B. Chaure, A.N. Cammidge, I. Chambrier, A.K. Ray, M.J. Deen, Evolutionary Computation for Parameter Extraction of Organic Thin-Film Transistors Using Newly Synthesized Liquid Crystalline Nickel Phthalocyanine, Micromachines, 10, 2019, 683. ( https://doi.org/10.3390/mi10100683)
  6. E.M. Bauer, T. De Caro, P. Tagliatesta, M. Carbone, Unraveling The Real pigment composition of tattoo inks: the case of bi-components phthalocyanine based greens, Dyes Pigments, 167, 2019, 225-235. ( http://dx.doi.org/10.1016/j.dyepig.2019.04.018)
  7. Y. Zhao, J. W. Ying, Q. Sun, M. R. Ke, B. Y. Zheng, J. D. Huang, A novel silicon(IV) phthalocyanine-oligopeptide conjugate as a highly efficient photosensitizer for photodynamic antimicrobial therapy, Dyes Pigments, 172, 2020, 107834. (https://doi.org/10.1016/j.dyepig.2019.107834)
  8. Q. Li, Z. Sun, Q. Liang, M. Zhou, D. Sun, Novel tetrasubstituted zinc phthalocyanine-attapulgite composites for efficient catalytic oxidation of styrene with tert-butyl hydroperoxide as oxidant, Solid State Sci, 97, 2019, 106010. (https://doi.org/10.1016/j.solidstatesciences.2019.106010)

Ayrıntılar

Birincil Dil

İngilizce

Konular

Analitik Kimya

Bölüm

Araştırma Makalesi

Yayımlanma Tarihi

30 Haziran 2023

Gönderilme Tarihi

30 Mayıs 2023

Kabul Tarihi

9 Haziran 2023

Yayımlandığı Sayı

Yıl 2023 Cilt: 5 Sayı: 1

Kaynak Göster

APA
Nas, A., Dilber, G., & Bıyıklıoğlu, Z. (2023). Electroanalytical characterization of chloroquinoline substituted redox-active phthalocyanines. Turkish Journal of Analytical Chemistry, 5(1), 25-31. https://doi.org/10.51435/turkjac.1307391
AMA
1.Nas A, Dilber G, Bıyıklıoğlu Z. Electroanalytical characterization of chloroquinoline substituted redox-active phthalocyanines. TurkJAC. 2023;5(1):25-31. doi:10.51435/turkjac.1307391
Chicago
Nas, Asiye, Gülsev Dilber, ve Zekeriya Bıyıklıoğlu. 2023. “Electroanalytical characterization of chloroquinoline substituted redox-active phthalocyanines”. Turkish Journal of Analytical Chemistry 5 (1): 25-31. https://doi.org/10.51435/turkjac.1307391.
EndNote
Nas A, Dilber G, Bıyıklıoğlu Z (01 Haziran 2023) Electroanalytical characterization of chloroquinoline substituted redox-active phthalocyanines. Turkish Journal of Analytical Chemistry 5 1 25–31.
IEEE
[1]A. Nas, G. Dilber, ve Z. Bıyıklıoğlu, “Electroanalytical characterization of chloroquinoline substituted redox-active phthalocyanines”, TurkJAC, c. 5, sy 1, ss. 25–31, Haz. 2023, doi: 10.51435/turkjac.1307391.
ISNAD
Nas, Asiye - Dilber, Gülsev - Bıyıklıoğlu, Zekeriya. “Electroanalytical characterization of chloroquinoline substituted redox-active phthalocyanines”. Turkish Journal of Analytical Chemistry 5/1 (01 Haziran 2023): 25-31. https://doi.org/10.51435/turkjac.1307391.
JAMA
1.Nas A, Dilber G, Bıyıklıoğlu Z. Electroanalytical characterization of chloroquinoline substituted redox-active phthalocyanines. TurkJAC. 2023;5:25–31.
MLA
Nas, Asiye, vd. “Electroanalytical characterization of chloroquinoline substituted redox-active phthalocyanines”. Turkish Journal of Analytical Chemistry, c. 5, sy 1, Haziran 2023, ss. 25-31, doi:10.51435/turkjac.1307391.
Vancouver
1.Asiye Nas, Gülsev Dilber, Zekeriya Bıyıklıoğlu. Electroanalytical characterization of chloroquinoline substituted redox-active phthalocyanines. TurkJAC. 01 Haziran 2023;5(1):25-31. doi:10.51435/turkjac.1307391

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