Araştırma Makalesi
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Spectroscopic Analysis, Quantum Chemical Calculations and Molecular Docking Studies of Organometallic Copper Complex

Yıl 2024, , 1782 - 1806, 15.12.2024
https://doi.org/10.31466/kfbd.1480163

Öz

In this research, a new compound Bis{(E)-2-((3-bromophenylimino)methyl)-4,6-di-tert-butylphenolato-N,O-}copper(II) (PMTB)2Cu was synthesized. (PMTB)2Cu compound was characterized by FT-IR, UV-Vis, X-ray diffraction spectroscopy, DFT and Hirshfeld surface analysis methods. In addition, the compatibility and differences between the obtained results were evaluated and the theoretical and experimental data were compared. Biological activity, physicochemical, lipophilicity, water solubility, pharmacokinetics and drug-likeness for the compound (PMTB)2Cu were investigated with an online SwissADME program. Molecular docking studies of the compound were performed. It was determined that the compound (PMTB)2Cu interacts with the carbonic ahydrase II (CA2) target in the Lyase target class. The CA2 enzyme is found in red blood cells, other parts of animals and plants. Carbon dioxide entering the blood is converted into carbonic acid by the CA2 enzyme. Carbonic acid, which disintegrates into its ions, mixes with the blood and provides pH balance. It plays a role in various functions such as acid-base balance, regulation of cardiovascular compatibility, digestion, ion exchange between cell parts and providing the bicarbonate required for various enzymatic reactions. The results obtained from Autodock4 and Discovery studio visualization programs shed light on the fact that the synthesized compound can give results compatible with the CA2 enzyme.

Etik Beyan

Research and publication ethics were complied with in the study.

Proje Numarası

Bulunmamaktadır.

Kaynakça

  • Abdalhadi, S.M., Al-Baitai, A.Y., and Al-Zubaidi, H.A. (2021). Synthesis and Characterization of 2,3-Diaminomaleonitrile Derivatives by One-Pot Schiff Base Reaction and Their Application in Dye Synthesized Solar Cells. Indonesian Journal of Chemistry, 21(2): p. 443-451.
  • Abdellah, I.M., Yildirim, E., and El-Shafei, A. (2021). Low-cost novel X-shaped hole transport materials for efficient perovskite solar cells: Molecular modelling of the core and schiff base effects on photovoltaic and photophysical properties. Materials Chemistry and Physics, 296.
  • Adant, C., Dupuis, M., and Bredas, J. (1995). Ab initio study of the nonlinear optical properties of urea: electron correlation and dispersion effects. International Journal of Quantum Chemistry, 56(S29): p. 497-507.
  • Akagi, F., Ishida, Y., Matsuo, T., and Kawaguchi, H. (2011). Synthesis and reactivity of niobium complexes having a tripodal triaryloxide ligand in bidentate, tridentate, and tetradentate coordination modes. Dalton Transactions, 40(10), 2375-2382.
  • Akbari, Z., Montazerozohori, M., Bruno, G., Moulaee, K., and Neri, G. (2022). Development of a novel electrochemical nitrite sensor based on Zn‐Schiff base complexes. Applied Organometallic Chemistry, 36(4), e6610.
  • Amirthaganesan, K., Vadivel, T., Dhamodaran, M., and Chandraboss, V. L. (2022). In vitro antifungal studies of ruthenium (III) complex derived from chitosan Schiff bases. Materials Today: Proceedings, 60, 1716-1720.
  • Bei, Y., Ma, Y., Song, F., Kou, Z., Hu, L., Bo, C., ... and Zhou, Y. (2022). Recent progress of biomass based self‐healing polymers. Journal of Applied Polymer Science, 139(16), 51977.
  • Daina, A., Michielin, O., and Zoete, V. (2017). SwissADME: a free web tool to evaluate pharmacokinetics, drug-likeness and medicinal chemistry friendliness of small molecules. Scientific reports, 7(1), 42717.
  • Daina, A., Michielin, O., and Zoete, V. (2019). SwissTargetPrediction: updated data and new features for efficient prediction of protein targets of small molecules. Nucleic acids research, 47(W1), W357-W364.
  • DeLano, W. L. (2002). Pymol: An open-source molecular graphics tool. CCP4 Newsl. Protein Crystallogr, 40(1), 82-92.
  • Đorović, J., Marković, Z., Petrović, Z. D., Simijonović, D., and Petrović, V. P. (2017). Theoretical analysis of the experimental UV-Vis absorption spectra of some phenolic Schiff bases. Molecular Physics, 115(19), 2460-2468.
  • Ersanli, C. C., Kantar, G. K., and Şaşmaz, S. (2017). Crystallographic, spectroscopic (FTIR and NMR) and quantum computational calculation studies on bis (2-methoxy-4-((E)-prop-1-enyl) phenyl) oxalate. Journal of Molecular Structure, 1143, 318-327.
  • Ersanli, C. C., Kaya Kantar, G., Demircioğlu, Z., and Şaşmaz, S. (2018). 4-(2-Methoxy-4-(prop-1-enyl) phenoxy) phthalonitrile; synthesis, characterization, Hirshfeld surface analysis and chemical activity studies. Molecular Crystals and Liquid Crystals, 667(1), 88-111.
  • Frisch, A. (2009). Gaussian 09, Revision d. 01, Gaussian. Inc, Wallingford, USA, 25p, 470.
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  • Güzel, E., Demircioğlu, Z., Çicek, C., and Ağar, E. (2020). Experimental and Theoretical Approach: Local and Global Chemical Activity, Charge Transfer Method witd DNA Bases, Spectroscopic, Structural and Electronic Properties of (E)-2-(((4-fluorophenyl)imino)methyl)-4-methoxyphenol. Journol of Molecular Structure, 1204.
  • Güzel, E., Demircioğlu, Z., Çiçek, C., Ağar, E., and Yavuz, M. (2021). Experimental (XRD, FTIR, UV–Vis, NMR) and theoretical investigations (chemical activity descriptors, NBO, DNA/ECT) of (E)-2-((2-hydroxy-5-methoxybenzylidene) amino)-4-nitrophenol. Molecular Crystals and Liquid Crystals, 724(1), 58-76.
  • Ibrahim, S. M., Saeed, A. M., Abd Elmoneam, W. R., and Mostafa, M. A. (2023). Synthesis and characterization of new Schiff base bearing bis (pyrano [3, 2-c] quinolinone): Efficient cationic dye adsorption from aqueous solution. Journal of Molecular Structure, 1284, 135364.
  • Jain, S., Rana, M., Sultana, R., Mehandi, R., and Rahisuddin. (2023). Schiff base metal complexes as antimicrobial and anticancer agents. Polycyclic Aromatic Compounds, 43(7), 6351-6406.
  • Joseyphus, R. S., Reshma, R., Arish, D., and Elumalai, V. (2022). Antimicrobial, photocatalytic action and molecular docking studies of imidazole-based Schiff base complexes. Results in Chemistry, 4, 100583.
  • Kalecik, S., Güzel, E., Doğan, O. E., Ağar, E., ve Yavuz, M. (2022). (E)-4-bromo-5-floro-2-(((4-(fenilamino) fenil) imino) metil) fenol Bileşiğinin Kimyasal Aktivite ve Spektroskopik Çalışmaları. Karadeniz Fen Bilimleri Dergisi, 12(2), 821-840.
  • Kaya, S., Erkan, S., and Karakaş, D. (2021). Computational investigation of molecular structures, spectroscopic properties and antitumor-antibacterial activities of some Schiff bases. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 244, 118829.
  • Lindskog, S. (1997). Structure and mechanism of carbonic anhydrase. Pharmacology and therapeutics, 74(1), 1-20.
  • Lipinski, C. A., Lombardo, F., Dominy, B. W., and Feeney, P. J. (2001). Experimental and Computational Approaches to Estimate Solubility and Permeability in Drug Discovery and Development Settings. Advanced Drug Delivery Reviews, 1; 46 (1-3): 3-26.
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  • Merckx, C., Zschüntzsch, J., Meyer, S., Raedt, R., Verschuere, H., Schmidt, J., ... and De Bleecker, J. L. (2022). Exploring the therapeutic potential of ectoine in Duchenne muscular dystrophy: Comparison with taurine, a supplement with known beneficial effects in the mdx mouse. International Journal of Molecular Sciences, 23(17), 9567.
  • Miehlich, B., Savin, A., Stoll, H., and Preuss, H. (1989). Results obtained with the correlation energy density functionals of Becke and Lee, Yang and Parr. Chemical Physics Letters, 157(3), 200-206.
  • Mulliken, R. S. (1955). Electronic population analysis on LCAO–MO molecular wave functions. I. The Journal of chemical physics, 23(10), 1833-1840.
  • Nair, S. K., Calderone, T. L., Christianson, D. W., and Fierke, C. A. (1991). Altering the mouth of a hydrophobic pocket. Structure and kinetics of human carbonic anhydrase II mutants at residue Val-121. Journal of biological chemistry, 266(26), 17320-17325.
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  • Olalekan, T. E., Ogunlaja, A. S., VanBrecht, B., and Watkins, G. M. (2016). Spectroscopic, structural and theoretical studies of copper (II) complexes of tridentate NOS Schiff bases. Journal of Molecular Structure, 1122, 72-79.
  • Ouerghi, Z., Gornitzka, H., Temel, E., Dridi, I., and Kefi, R. (2019). A new non-centrosymmetric Chlorobismuthate (III) hybrid material: Crystal structure, optical properties and antibacterial study. Journal of Molecular Structure, 1181, 338-347.
  • Ouerghi, Z., Guionneau, P., Brandan, S. A., Temel, E., and Kefi, R. (2021). Crystal structure, computational study, optical and vibrational properties of a new luminescent material based on bismuth (III):(C10H28N4)[Bi2Cl10]. Journal of Solid State Chemistry, 303, 122485.
  • Önal, E., Okyay, T. M., Ekineker, G., İşci, Ü., Ahsen, V., Berber, S., ... and Dumoulin, F. (2018). Sulfanyl vs sulfonyl, 4, 5-vs 3, 6-position. How structural variations in phthalonitrile substitution affect their infra-red, crystallographic and Hirshfeld surface analyses. Journal of Molecular Structure, 1155, 310-319.
  • Öztürk, S., Işik, Ş., Fun, H. K., Kendi, E., Agar, E., Şaşmaz, S., and İbrahim, A. R. (1999). 4-(Phenothiazin-10-yl) benzene-1, 2-dicarbonitrile. Acta Crystallographica Section C: Crystal Structure Communications, 55(3), 395-397.
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Organometalik Bakır Kompleksinin Spektroskopik Analizi, Kuantum Kimyasal Hesaplamaları ve Moleküler Kenetleme Çalışmaları

Yıl 2024, , 1782 - 1806, 15.12.2024
https://doi.org/10.31466/kfbd.1480163

Öz

Bu araştırmada, yeni bir bileşik olan Bis{(E)-2-((3-bromofenilimino)metil)-4,6-di-tert-bütilfenolato-N,O-}bakır(II) (PMTB)2Cu sentezlendi. (PMTB)2Cu bileşiği FT-IR, UV-Vis, X-ışını kırınım spektroskopisi, DFT ve Hirshfeld yüzey analiz yöntemleriyle karakterize edildi. Ayrıca elde edilen sonuçlar arasındaki uyumluluk ve farklılıklar değerlendirilerek teorik ve deneysel veriler karşılaştırılmıştır. (PMTB)2Cu bileşiği için biyolojik aktivitesi, fizikokimyasal, lipofilik, suda çözünürlük, farmakokinetiği ve ilaca benzerliği çevrimiçi bir SwissADME programı ile araştırıldı. Bileşiğin moleküler kenetleme çalışmaları yapıldı. (PMTB)2Cu bileşiğinin Liyaz hedef sınıfındaki karbonik ahidraz II (CA2) hedefi ile etkileşim verdiği belirlendi. CA2 enzimi kırmızı kan hücrelerinde, hayvanların diğer bölgelerinde ve bitkilerde bulunur. Kana karışan karbondioksit CA2 enzimi ile karbonikaside dönüştürülür. İyonlarına ayrışan karbonikasid kana karışarak pH dengesini sağlar Asit-baz dengesi, kardiyovasküler uyumluluğun düzenlenmesi, sindirim, hücre bölümleri arasındaki iyon değişimi ve değişik enzimatik reaksiyonlar için gerekli bikarbonatın sağlanması gibi çeşitli görevlerin gerçekleşmesinde rol almaktadır. Autodock4 ve Discovery studio görselleştirme programlarından elde edilen sonuçlar, sentezlenen bileşiğin CA2 enzimi ile uyumlu sonuç verebileceğine ışık tutmaktadır.

Etik Beyan

Yapılan çalışmada araştırma ve yayın etiğine uyulmuştur

Proje Numarası

Bulunmamaktadır.

Kaynakça

  • Abdalhadi, S.M., Al-Baitai, A.Y., and Al-Zubaidi, H.A. (2021). Synthesis and Characterization of 2,3-Diaminomaleonitrile Derivatives by One-Pot Schiff Base Reaction and Their Application in Dye Synthesized Solar Cells. Indonesian Journal of Chemistry, 21(2): p. 443-451.
  • Abdellah, I.M., Yildirim, E., and El-Shafei, A. (2021). Low-cost novel X-shaped hole transport materials for efficient perovskite solar cells: Molecular modelling of the core and schiff base effects on photovoltaic and photophysical properties. Materials Chemistry and Physics, 296.
  • Adant, C., Dupuis, M., and Bredas, J. (1995). Ab initio study of the nonlinear optical properties of urea: electron correlation and dispersion effects. International Journal of Quantum Chemistry, 56(S29): p. 497-507.
  • Akagi, F., Ishida, Y., Matsuo, T., and Kawaguchi, H. (2011). Synthesis and reactivity of niobium complexes having a tripodal triaryloxide ligand in bidentate, tridentate, and tetradentate coordination modes. Dalton Transactions, 40(10), 2375-2382.
  • Akbari, Z., Montazerozohori, M., Bruno, G., Moulaee, K., and Neri, G. (2022). Development of a novel electrochemical nitrite sensor based on Zn‐Schiff base complexes. Applied Organometallic Chemistry, 36(4), e6610.
  • Amirthaganesan, K., Vadivel, T., Dhamodaran, M., and Chandraboss, V. L. (2022). In vitro antifungal studies of ruthenium (III) complex derived from chitosan Schiff bases. Materials Today: Proceedings, 60, 1716-1720.
  • Bei, Y., Ma, Y., Song, F., Kou, Z., Hu, L., Bo, C., ... and Zhou, Y. (2022). Recent progress of biomass based self‐healing polymers. Journal of Applied Polymer Science, 139(16), 51977.
  • Daina, A., Michielin, O., and Zoete, V. (2017). SwissADME: a free web tool to evaluate pharmacokinetics, drug-likeness and medicinal chemistry friendliness of small molecules. Scientific reports, 7(1), 42717.
  • Daina, A., Michielin, O., and Zoete, V. (2019). SwissTargetPrediction: updated data and new features for efficient prediction of protein targets of small molecules. Nucleic acids research, 47(W1), W357-W364.
  • DeLano, W. L. (2002). Pymol: An open-source molecular graphics tool. CCP4 Newsl. Protein Crystallogr, 40(1), 82-92.
  • Đorović, J., Marković, Z., Petrović, Z. D., Simijonović, D., and Petrović, V. P. (2017). Theoretical analysis of the experimental UV-Vis absorption spectra of some phenolic Schiff bases. Molecular Physics, 115(19), 2460-2468.
  • Ersanli, C. C., Kantar, G. K., and Şaşmaz, S. (2017). Crystallographic, spectroscopic (FTIR and NMR) and quantum computational calculation studies on bis (2-methoxy-4-((E)-prop-1-enyl) phenyl) oxalate. Journal of Molecular Structure, 1143, 318-327.
  • Ersanli, C. C., Kaya Kantar, G., Demircioğlu, Z., and Şaşmaz, S. (2018). 4-(2-Methoxy-4-(prop-1-enyl) phenoxy) phthalonitrile; synthesis, characterization, Hirshfeld surface analysis and chemical activity studies. Molecular Crystals and Liquid Crystals, 667(1), 88-111.
  • Frisch, A. (2009). Gaussian 09, Revision d. 01, Gaussian. Inc, Wallingford, USA, 25p, 470.
  • Frost, S. C., and McKenna, R. (Eds.). (2013). Carbonic anhydrase: mechanism, regulation, links to disease, and industrial applications (Vol. 75). Springer Science and Business Media.
  • Garrod, P., and Grady D. (1972). Antibioric and Chemotheraphy. (3rd Edition). Edinburgh, Churchill Livingstone.
  • Gümüşgöz, G., ve Serin, S. (2018). 2, 5-Diaminobenzensülfonik Asitin Schiff Bazı ve Metal Komplekslerinin Sentezi ve Karakterizasyonu. Fen ve Mühendislik Bilimleri Dergisi, 35-9.
  • Güzel, E., Demircioğlu, Z., Çicek, C., and Ağar, E. (2020). Experimental and Theoretical Approach: Local and Global Chemical Activity, Charge Transfer Method witd DNA Bases, Spectroscopic, Structural and Electronic Properties of (E)-2-(((4-fluorophenyl)imino)methyl)-4-methoxyphenol. Journol of Molecular Structure, 1204.
  • Güzel, E., Demircioğlu, Z., Çiçek, C., Ağar, E., and Yavuz, M. (2021). Experimental (XRD, FTIR, UV–Vis, NMR) and theoretical investigations (chemical activity descriptors, NBO, DNA/ECT) of (E)-2-((2-hydroxy-5-methoxybenzylidene) amino)-4-nitrophenol. Molecular Crystals and Liquid Crystals, 724(1), 58-76.
  • Ibrahim, S. M., Saeed, A. M., Abd Elmoneam, W. R., and Mostafa, M. A. (2023). Synthesis and characterization of new Schiff base bearing bis (pyrano [3, 2-c] quinolinone): Efficient cationic dye adsorption from aqueous solution. Journal of Molecular Structure, 1284, 135364.
  • Jain, S., Rana, M., Sultana, R., Mehandi, R., and Rahisuddin. (2023). Schiff base metal complexes as antimicrobial and anticancer agents. Polycyclic Aromatic Compounds, 43(7), 6351-6406.
  • Joseyphus, R. S., Reshma, R., Arish, D., and Elumalai, V. (2022). Antimicrobial, photocatalytic action and molecular docking studies of imidazole-based Schiff base complexes. Results in Chemistry, 4, 100583.
  • Kalecik, S., Güzel, E., Doğan, O. E., Ağar, E., ve Yavuz, M. (2022). (E)-4-bromo-5-floro-2-(((4-(fenilamino) fenil) imino) metil) fenol Bileşiğinin Kimyasal Aktivite ve Spektroskopik Çalışmaları. Karadeniz Fen Bilimleri Dergisi, 12(2), 821-840.
  • Kaya, S., Erkan, S., and Karakaş, D. (2021). Computational investigation of molecular structures, spectroscopic properties and antitumor-antibacterial activities of some Schiff bases. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 244, 118829.
  • Lindskog, S. (1997). Structure and mechanism of carbonic anhydrase. Pharmacology and therapeutics, 74(1), 1-20.
  • Lipinski, C. A., Lombardo, F., Dominy, B. W., and Feeney, P. J. (2001). Experimental and Computational Approaches to Estimate Solubility and Permeability in Drug Discovery and Development Settings. Advanced Drug Delivery Reviews, 1; 46 (1-3): 3-26.
  • Maia, D. O., Santos, V. F., Barbosa, C. R., Fróes, Y. N., Muniz, D. F., Santos, A. L., ... and Teixeira, C. S. (2022). Nickel (II) chloride Schiff base complex: Synthesis, characterization, toxicity, antibacterial and leishmanicidal activity. Chemico-Biological Interactions, 351, 109714.
  • Merckx, C., Zschüntzsch, J., Meyer, S., Raedt, R., Verschuere, H., Schmidt, J., ... and De Bleecker, J. L. (2022). Exploring the therapeutic potential of ectoine in Duchenne muscular dystrophy: Comparison with taurine, a supplement with known beneficial effects in the mdx mouse. International Journal of Molecular Sciences, 23(17), 9567.
  • Miehlich, B., Savin, A., Stoll, H., and Preuss, H. (1989). Results obtained with the correlation energy density functionals of Becke and Lee, Yang and Parr. Chemical Physics Letters, 157(3), 200-206.
  • Mulliken, R. S. (1955). Electronic population analysis on LCAO–MO molecular wave functions. I. The Journal of chemical physics, 23(10), 1833-1840.
  • Nair, S. K., Calderone, T. L., Christianson, D. W., and Fierke, C. A. (1991). Altering the mouth of a hydrophobic pocket. Structure and kinetics of human carbonic anhydrase II mutants at residue Val-121. Journal of biological chemistry, 266(26), 17320-17325.
  • Ohno, K., Mandai, Y., and Matsuura, H. (1992). Vibrational spectra and molecular conformation of taurine and its related compounds. Journal of molecular structure, 268(1-3), 41-50.
  • Olalekan, T. E., Ogunlaja, A. S., VanBrecht, B., and Watkins, G. M. (2016). Spectroscopic, structural and theoretical studies of copper (II) complexes of tridentate NOS Schiff bases. Journal of Molecular Structure, 1122, 72-79.
  • Ouerghi, Z., Gornitzka, H., Temel, E., Dridi, I., and Kefi, R. (2019). A new non-centrosymmetric Chlorobismuthate (III) hybrid material: Crystal structure, optical properties and antibacterial study. Journal of Molecular Structure, 1181, 338-347.
  • Ouerghi, Z., Guionneau, P., Brandan, S. A., Temel, E., and Kefi, R. (2021). Crystal structure, computational study, optical and vibrational properties of a new luminescent material based on bismuth (III):(C10H28N4)[Bi2Cl10]. Journal of Solid State Chemistry, 303, 122485.
  • Önal, E., Okyay, T. M., Ekineker, G., İşci, Ü., Ahsen, V., Berber, S., ... and Dumoulin, F. (2018). Sulfanyl vs sulfonyl, 4, 5-vs 3, 6-position. How structural variations in phthalonitrile substitution affect their infra-red, crystallographic and Hirshfeld surface analyses. Journal of Molecular Structure, 1155, 310-319.
  • Öztürk, S., Işik, Ş., Fun, H. K., Kendi, E., Agar, E., Şaşmaz, S., and İbrahim, A. R. (1999). 4-(Phenothiazin-10-yl) benzene-1, 2-dicarbonitrile. Acta Crystallographica Section C: Crystal Structure Communications, 55(3), 395-397.
  • Parrey, I. R., and Hashmi, A. A. (2015). Synthesis of Schiff base complexes of Mn (II) and Co (II) and their catalytic oxidation towards olefins and alcohols. Can. Chem. Trans, 3(1), 65-71.
  • Sheldrick, G. M. (2015). Crystal structure refinement with SHELXL. Acta Crystallographica Section C: Structural Chemistry, 71(1), 3-8.
  • Sheldrick, G. M. (2015). SHELXT–Integrated space-group and crystal-structure determination. Acta Crystallographica Section A: Foundations and Advances, 71(1), 3-8.
  • Suresh, M. S., and Prakash, V. (2010). Preparation and characterization of Cr (III), Mn (II), Co (III), Ni (II), Cu (II), Zn (II) and Cd (II) chelates of Schiff's base derived from vanillin and 4-aminoantipyrine. Int. Phys. Sci, 5(14), 2203-2211.
  • Süleymanoğlu, N., Ustabaş, R., Direkel, Ş., Alpaslan, Y. B., and Ünver, Y. (2017). 1, 2, 4-triazole derivative with Schiff base; thiol-thione tautomerism, DFT study and antileishmanial activity. Journal of Molecular Structure, 1150, 82-87.
  • Şahin, Z. S., Şenöz, H., Tezcan, H., and Büyükgüngör, O. (2015). Synthesis, spectral analysis, structural elucidation and quantum chemical studies of (E)-methyl-4-[(2-phenylhydrazono) methyl] benzoate. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 143, 91-100.
  • Temel, H., İlhan, S., and Şekerci, M. (2002). Synthesis and characterization of a new bidentate Schiff base and its transition metal complexes. Synthesis and reactivity in inorganic and metal-organic chemistry, 32(9), 1625-1634.
  • Ustabaş, R., Çoruh, U., Menzek, A., Altundaş, A., Yavuz, M., and Hökelek, T. (2005). (1SR, 2SR, 3SR, 10SR, 12RS, 13RS, 14RS, 17SR)-13-Hydroxy-11-oxapentacyclo [8.7. 0.02, 14.04, 9.012, 17] heptadeca-4, 6, 8-trien-3-yl 4-chlorobenzoate. Acta Crystallographica Section E: Structure Reports Online, 61(11), o3859-o3861.
  • Ustabaş, R., Salamci, E., Çoruh, U., Vázquez-López, E. M., and Yavuz, M. (2006). (1RS, 2SR, 6SR, 7SR)-4, 10-Dioxatricyclo [5.2. 1.02, 6] dec-8-en-3-one. Acta Crystallographica Section E: Structure Reports Online, 62(9), o4209-o4210.
  • Uzun, S., Demircioğlu, Z., Taşdoğan, M., and Ağar, E. (2020). Quantum chemical and X-ray diffraction studies of (E)-3-(((3, 4-dimethoxybenzyl) imino) methyl) benzene-1, 2-diol. Journal of Molecular Structure, 1206, 127749.
  • Wang, Z., Tang, P., Chen, S., Xing, Y., Yin, C., Feng, J., and Jiang, F. (2023). Fully biobased sustainable elastomers derived from chitin, lignin, and plant oil via grafting strategy and Schiff-base chemistry. Carbohydrate Polymers, 305, 120577.
  • Wolff, S. K., Grimwood, D. J., McKinnon, J. J., Turner, M. J., Jayatilaka, D., and Spackman, M. A. (2012). Crystal explorer. Australia, University of Western Australia Crawley.
  • Yekhlef, R., Benghanem, F., Foudia, M., Keraghel, S., Ghedjati, S., Toukal, L., and Akhtar, M. S. (2023). Synthesis, Spectroscopic and Thermal Characterization and Antioxidant Activities of Three Schiff Bases Derived from Aminophenol. International Journal of Heat and Technology, 41(2).
  • Yilmaz, S. K., Agar, A. A., Cinar, E. B., Dege, N., Vidya, V. G., and Kumar, V. V. (2024). Deciphering non-covalent interactions in unprecedented binuclear copper complex: Spectroscopic, Hirshfeld surface and DFT investigation. Journal of Molecular Structure, 1299, 137111.
  • Zaoui, Y., Temel, E., Taoufik, J., Mague, J. T., Faouzi, M. A., and Ramli, Y. (2023). Synthesis, molecular structure, spectral characterization, and biological activities of ethyl 2-(4-(4-chlorobenzyl)-3-methyl-6-oxopyridazin-1 (6H)-yl) acetate. Journal of Molecular Structure, 1289, 135867.
Toplam 52 adet kaynakça vardır.

Ayrıntılar

Birincil Dil Türkçe
Konular Klasik Fizik (Diğer)
Bölüm Makaleler
Yazarlar

Mert Çayli 0009-0000-5338-1773

Enis Güzel 0000-0001-8068-2934

Mustafa Macit 0000-0001-6593-4291

Metin Yavuz 0000-0002-1262-9135

Proje Numarası Bulunmamaktadır.
Yayımlanma Tarihi 15 Aralık 2024
Gönderilme Tarihi 7 Mayıs 2024
Kabul Tarihi 31 Ekim 2024
Yayımlandığı Sayı Yıl 2024

Kaynak Göster

APA Çayli, M., Güzel, E., Macit, M., Yavuz, M. (2024). Organometalik Bakır Kompleksinin Spektroskopik Analizi, Kuantum Kimyasal Hesaplamaları ve Moleküler Kenetleme Çalışmaları. Karadeniz Fen Bilimleri Dergisi, 14(4), 1782-1806. https://doi.org/10.31466/kfbd.1480163