Synthesis, spectroscopic, thermal, crystal structure properties, and characterization ofnew Hofmann-$T_d$-type complexes with 3-aminopyridine

Yıl: 2021 Cilt: 45 Sayı: 3 Sayfa Aralığı: 942 - 955 Metin Dili: İngilizce DOI: 10.3906/kim-2101-32 İndeks Tarihi: 29-06-2022

Synthesis, spectroscopic, thermal, crystal structure properties, and characterization ofnew Hofmann-$T_d$-type complexes with 3-aminopyridine

Öz:
In this study, synthesis of two new tetracyanocadmate(II) and tetracyanozincate(II) complexes based on 3-aminopyridine (3AP) and investigation of their structural properties were reported. These complexes were characterized by using vibration spectroscopy, elemental, thermal analysis and single crystal X-ray diffraction (SC-XRD) techniques. Investigation of the elemental, spectral and single crystal data of these complexes showed that the formulas $[Cd(3AP2 Zn(μ4 -CN4 n$ (1) and $[Cd(3AP)_2 Cd(μ_4 -CN)_4 ]_n$ (2) fully explained their crystal structure. General information about the structural and chemical properties of these complexes obtained in single crystal form was obtained by observing the changes in the characteristic peaks of the 3AP with the $[Zn(μ_4 -CN)_4 ]^{2-} and [Cd(μ_4 -CN)_4 ]^{2-}$ structures that make up these complexes. The behaviors of these complexes against changes in temperature were obtained by examining the temperature-dependent changes of their mass. The asymmetric unit of the heterometallic complexes 1 and 2 consist of half Cd(II) ion, half M ion [M = Zn1 in 1 and Cd2 in 2], two cyanide ligands and one 3AP
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  • 1. Hofmann KA, Küspert F. Verbindungen von kohlenwasserstoffen mit metallsalzen. Zeitschrift Für Anorganische Chemie 1897; 15 (1): 204-207. doi:10.1002/zaac.18970150118
  • 2. Wells AF. Structural Inorganic Chemistry. Oxford, England: Oxford Clarendon Press, 1962.
  • 3. Richard J, Lewis Sr. Hawley’s Condensed Chemical Dictionary. New York, USA: Wiley & Sons, Inc., 2001.
  • 4. Iwamoto, T. The Hofmann-type and related inclusion compounds. In: Atwood JL, Davies JED, MacNicol DD (editors). Inclusion Compounds. London, UK: Academic Press, 1984, pp. 29-57.
  • 5. Vaidya S. Clathrates - an exploration of the chemistry of caged compounds. Resonance – Journal of Science Education 2004; 9 (7): 18-31.
  • 6. Manakov, AY, Skiba SS. Application of clathrate compounds for hydrogen storage. Russian Journal of General Chemistry 2007; 77 (4): 740-751. doi:10.1134/s1070363207040354
  • 7. Xu J, Tang J, Sato K, Tanabe Y, Miyasaka H et al. Low-temperature heat capacity of $Sr_8 Ga_{16}Ge_{30} and Ba_8 Ga_{16}Ge_{30}$: Tunneling states and electron-phonon interaction in clathrates. Physical Review B 2010; 82 (8): 1-6. doi:10.1103/physrevb.82.085206
  • 8. Castellani B, Morini E, Filipponi M, Nicolini A, Palombo M et al. Clathrate hydrates for thermal energy storage in buildings: overview of proper hydrate-forming compounds. Sustainability 2014; 6 (10): 6815-6829. doi:10.3390/su6106815
  • 9. Kanyisa LN, Priscilla GLB, Emmanuel II. Organic clathrate compounds as suitable transducers in electrochemical sensing. International Journal of Electrochemical Science 2015; 10: 6959-6974.
  • 10. Haixin L, Sangmin L, Lin S, Matthew S, Michael E et al. Clathrate colloidal crystals. Science 2017; 355: 931-935. doi:10.1126/science. aal3919
  • 11. Kartal Z. Synthesis, spectroscopic, thermal and structural properties of $[M(3-aminopyridine)_2 Ni(µ-CN)_2(CN)_2]_n$ (M(II) = Co and Cu) heteropolynuclear cyano-bridged complexes. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy 2015; 152: 577-583.doi: 10.1016/j.saa.2014.12.117.
  • 12. Kartal Z, Şahin O, Yavuz A. The synthesis of two new Hofmann-type M(3-aminopyridine)2 Ni(CN)4 [M = Zn(II) and Cd(II)] complexes and the characterization of their crystal structure by various spectroscopic methods. Journal of Molecular Structure 2018; 1171: 578-586. doi: 10.1016/j.molstruc.2018.06.042
  • 13. Iwamoto T, Kiyoki M, Ohtsu Y, Takeshige-Kato Y. The analogs of hofmann type clathrate formed between diammine-or diaminemetal(ii) tetracyanometallate(II) host and aromatic guest molecule. Bulletin of the Chemical Society of Japan 1978; 51 (2): 488-491. doi:10.1246/bcsj.51.488
  • 14. Iwamoto T. Recent developments in the chemistry of Hofmann-type and the analogous clathrates. Journal of Molecular Structure 1981; 75 (1): 51-65. doi:10.1016/0022-2860(81)85150-2
  • 15. Bayarı S, Kantarcı Z, Akyüz S. An infrared and Raman spectroscopic study of the Td-type 4,4′-bipyridylcadmium(II) tetracyanometallate(II)benzene(1/2) clathrates: $Cd(C_{10}H_8N_2)Cd(CN)_4.2C_6H_6 and Cd(C_{10}H_8N_2)Hg(CN)_4.2C_6H_6$. Journal of Inclusion Phenomena and Molecular Recognition in Chemistry 1994; 17: 291-302. doi:10.1007/BF00708788
  • 16. Kantarci Z, Karacan N and Davarcioǧlu B. Infrared spectroscopic studies on the Hofmann-Td-type complexes: $Mn(pyridine)_2 Cd(CN)_4and Mn(pyridine)_2Hg(CN)_4$ . Journal of Molecular Structure 1994; 323: 53-58. doi:10.1016/0022-2860(94)07985-4
  • 17. Kasap E, Kantarcı Z. Vibrational spectroscopic studies on the Hofmann-Td-type clathrates: M(ethylenediamine)M′$(CN)_4 .2C_6H_6$ (M = Mnor Cd, M′ = Cd or Hg). Journal of Inclusion Phenomena and Molecular Recognition in Chemistry 1995; 23: 1-9. doi: 10.1007/BF00706944
  • 18. Kantarcı Z, Bayrak C, Bayarı S. An infrared and Raman spectroscopic study on the Hofmann-$T_d$ -type complexes: $ML_2M′(CN)_4$, M′ = Mn or Zn, Cd or Hg, L = pyridine, α-, ß- or γ-picoline. Journal of Molecular Structure 1997; 407: 155-163. doi:10.1016/S0022-2860(96)09739-6
  • 19. Yuge H, Kim C-H, Iwamoto T, Kitazawa T. Hofmann-$H_2O$-type and Hofmann-$H_2O$-Td-type host structures accommodating 1,4-dioxane: crystal structures of trans-bis (morpholine-N) cadmium(II) tetracyanonickelate(II), trans-diaquacadmium(II) tetracyanonickelate(II)- (1,4-dioxane)(1/2) and trans-diaquacadmium(II) tetracyanocadmate(II) (1,4-dioxane)(1/2). Inorganica Chimica Acta 1997; 257 (2): 217-224. doi:10.1016/s0020-1693(96)05484-9
  • 20. Akyuz S, Bakiler M, Andreeva L, Minceva-Sukarova, B. FT-IR Spectroscopic Investigation of Hofmann-Td-Type Complexes of 2-,and 3-Chloropyridine. Journal of Inclusion Phenomena and Molecular Recognition in Chemistry 2004; 48: 25-29. doi:10.1023/ B:JIPH.0000016588.83231.05
  • 21. Kartal Z, Parlak C, Şentürk Ş, Aytekin MT and Şenyel M. FT-IR Spectroscopic Study of the Hofmann-$T_d$ -type Clathrates: Ni(1,9-diaminononane)Mʹ$(CN)_4$⋅2G (Mʹ = Cd or Hg, G = Benzene, 1,2-Dichlorobenzene or 1,4-Dichlorobenzene). Croatica Chemica Acta 2007; 80 (1): 9-15. https://hrcak.srce.hr/12805
  • 22. İzgi T, Parlak C and Şenyel M. Vibrational spectroscopic investigations of some Hofmann-Td-type complexes: Ni(2-(1-cyclohexenyl)ethylamine)$_2M(CN)_4$ (M = Cd or Hg). Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy 2010; 76 (5): 435-438. doi: 10.1016/j.saa.2009.10.043
  • 23. Parlak C, Alver Ö and Şenyel M. Vibrational spectroscopic study on some Hofmann-$T_d$ type clathrates: Ni(4-phenylpyridine)$_2M(CN)_4·2G$ (M = Cd or Hg, G = 1,4-dioxane). Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy 2011; 78 (5): 1487-1491. doi:10.1016/j.saa.2011.01.038
  • 24. Bayrak C. Vibrational spectroscopic study of creatinine hofmann-$t_d$-type complexes. Asian Journal of Chemistry 2013; 25 (12): 6491-6495. doi:10.14233/ajchem.2013.13749
  • 25. Indramahalakshmi G. Vibrational spectroscopic analyses of $(en)_2-T_d-$type Clathrates. Asian Journal of Physical and Chemical Sciences 2020; 8 (1): 37-47. doi:10.9734/ajopacs/2020/v8i130108
  • 26. Jose SP, Mohan S. Vibrational spectra and normal co-ordinate analysis of 2-aminopyridine and 2-amino picoline. Spectrochimica Acta. Part A, Molecular and Biomolecular Spectroscopy 2006; 64 (1): 240-245. doi: 10.1016/j.saa.2005.06.043.
  • 27. Akyüz S. The FT-IR spectra of transition metal 3-aminopyridine tetracyanonickelate complexes. Journal of Molecular Structure 1998; 449: 23-27. doi:10.1016/S0022-2860(98)00328-7
  • 28. Dojer B, Pevec A, Belaj F, Kristl M. Two new zinc(II) acetates with 3– and 4–aminopyridine: syntheses and structural properties. Acta Chimica Slovenica 2015; 62 (2): 312-318. doi:10.17344/acsi.2014.1111
  • 29. Karpagam J, Sundaraganesan N, Kalaichelvan S, Sebastian S. Anharmonic vibrational analysis of 3,4-diaminopyridine and 3-aminopyridine by density functional theory calculations. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy 2010; 76 (5): 502- 512. doi:10.1016/j.saa.2010.04.013
  • 30. Büyükmurat Y, Akyüz S. Theoretical and experimental IR spectra and assignments of 3-aminopyridine. Journal of Molecular Structure 2001; 563-564: 545-550. doi:10.1016/s0022-2860(00)00801-2
  • 31. Akalin E, Akyuz S. Experimental and theoretical vibrational spectroscopic investigation of Zn(II) halide complexes of 3-aminopyridine and 3-chloropyridine. Journal of Molecular Structure 2011; 993: 390-396. doi: 10.1016/j.molstruc.2011.01.060
  • 32. Dhaveethu K, Ramachandramoorthy T, Thirunavukkarasu K. Spectroscopic, thermal and biological studies of Zn(II), Cd(II) and Hg(II) complexes derived from 3-aminopyridine and nitrite ion. Journal of the Korean Chemical Society 2013; 57 (6): 712-720. doi:10.5012/ JKCS.2013.57.6.712
  • 33. Akyüz S. The FT-IR spectroscopic investigation of transition metal(II) 4-aminopyridine tetracyanonickelate complexes. Journal of Molecular Structure 1999; 482-483: 171-174. doi:10.1016/s0022-2860(98)00638-3
  • 34. Topacli A, Bayarı S. Normal coordinate analysis of 4-aminopyridine. Effect of substituent on pyridine ring in metal complexes of 4-substituted pyridines. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy 2001; 57: 1385-1391. doi: 10.1016/S1386- 1425(00)00480-7
  • 35. Kartal Z, Şahin O. The synthesis of heteroleptic cyanometallate aminopyridine complexes and an investigation into their structural properties with various spectroscopic methods. Journal of Molecular Structure 2021; 1227: 129514. doi:10.1016/j.molstruc.2020.129514
  • 36. Liu C-Y, Xu L-Y, Ren Z-G, Wang H-F and Lang J-P. Assembly of Silver(I)/N,N-Bis(diphenylphosphanylmethyl)-3-aminopyridine/Halide or pseudohalide complexes for efficient photocatalytic degradation of organic dyes in water. Crystal Growth & Design 2017; 17 (9): 4826- 4834. doi:10.1021/acs.cgd.7b00766
  • 37. Graham Solomons TW. Organic Chemistry. New York, USA: Wiley, 1996.
  • 38. Sheldrick GM. A short history of SHELX. Acta Crystallographica 2008; A 64: 112-122. doi: 10.1107/S0108767307043930
  • 39. Sheldrick GM. Crystal structure refinement with SHELXL. Acta Crystallographica 2015; C 71: 3-8. doi: 10.1107/S2053229614024218
  • 40. Bruker AXS Inc. Bruker APEX2 (Version 2014.11.0). Madison, WI, USA: Bruker AXS Inc., 2014.
  • 41. Macrae CF, Bruno IJ, Chisholm JA, Edgington PR, Patrick MC et al. Mercury CSD 2.0 – New features for the visualization and investigation of crystal structures. Journal of Applied Crystallography 2008; 41: 466-470. doi:10.1107/S0021889807067908
  • 42. Farrugia LJ. WinGX and ORTEP for Windows: an update. Journal of Applied Crystallography 2012; 45: 849-854. doi: 10.1107/ S0021889812029111
  • 43. Yuge H, Iwamoto T. Cyano-linked structures in polymeric cadmium cyanide–pyridine (py) and –isoquinoline (iquin) complexes: crystal structures of $[Cd(py)_2][Cd(CN)_4]$, $[{Cd(CN)(py)_2}_3][Cd_2(CN)_7] and [Cd(iquin)_2][Cd(CN)_3(iquin)_2]_2.$ Journal of the Chemical Society, Dalton Transactions 1993; 18: 2841-2847. doi:10.1039/dt9930002841
  • 44. Goher MAS, Hafez AK, Abu-Youssef MAM, Badr AMA, Gspan C, Mautner FA. New metal(II) complexes containing monodentate and bridging 3-aminopyridine and azido ligands. Polyhedron 2004; 23 (15): 2349-2356. doi:10.1016/j.poly.2004.06.011
  • 45. Banerjee S, Wu B, Lassahn P-G, Janiak C, Ghosh A. Synthesis, structure and bonding of cadmium(II) thiocyanate systems featuring nitrogen based ligands of different denticity. Inorganica Chimica Acta 2005; 358 (3): 535-544. doi:10.1016/j.ica.2004.07.048
  • 46. Pickardt J, Staub B. Kristallstruktur des cyanoverbrückten polymeren Zinkcyanid-Pyridin-Komplexes $[Zn(py)_2 ][Zn(CN)_4]$ / crystal structure of the cyano linked polymeric zinc cyanide pyridine complex $[Zn(py)_2 ][Zn(CN)_4]$. Zeitschrift Für Naturforschung B 1995; 50 (10): 1517-1520. doi:10.1515/znb-1995-1014
  • 47. Carmona P, Molina M, Escobar R. Studies on aminopyridines in aqueous solution by laser Raman spectroscopy. Spectrochimica Acta Part A: Molecular Spectroscopy 1993; 49 (1): 1-9. doi: 10.1016/0584-8539(93)80255-9
  • 48. Arnaudov MG, Ivanova BB, Dinkov SG. A reducing-difference IR-spectral study of 4-aminopyridine. Central European Journal of Chemistry 2004; 2 (4): 589-597. doi: 10.2478/BF02482723
  • 49. Mielcarek A, Wiśniewska A and Dołęga A. Unassisted formation of hemiaminal ether from 4-aminopyridine and o-vanillin - experimental and theoretical study. Structural Chemistry 2018; 29: 1189-200. doi: 10.1007/s11224-018-1105-5
  • 50. Jones LH. Vibrational spectrum and structure of metal cyanide complexes in the solid state—V. Spectrochimica Acta 1961; 17 (2): 188- 200. doi:10.1016/0371-1951(61)80064-7
  • 51. Nakamoto K. Infrared and Raman Spectra of Inorganic and Coordination Compounds, Part B, Applications in coordination, organometallic, and bioinorganic chemistry. Hoboken, New Jersey, USA: John Wiley and Sons, 2009.
  • 52. Kürkçüoğlu GS, Kavlak İ, Kınık B, Şahin O. Experimental and theoretical studies on the molecular structures and vibrational spectra of cyanide complexes with 1,2-dimethylimidazole: $[M(dmi)_2Ni(μ-CN)_4]n (M = Cu, Zn or Cd)$. Journal of Molecular Structure 2019; 1199: 126892. doi:10.1016/j.molstruc.2019.126892
APA KARTAL Z, Şahin O (2021). Synthesis, spectroscopic, thermal, crystal structure properties, and characterization ofnew Hofmann-$T_d$-type complexes with 3-aminopyridine . , 942 - 955. 10.3906/kim-2101-32
Chicago KARTAL Zeki,Şahin Onur Synthesis, spectroscopic, thermal, crystal structure properties, and characterization ofnew Hofmann-$T_d$-type complexes with 3-aminopyridine . (2021): 942 - 955. 10.3906/kim-2101-32
MLA KARTAL Zeki,Şahin Onur Synthesis, spectroscopic, thermal, crystal structure properties, and characterization ofnew Hofmann-$T_d$-type complexes with 3-aminopyridine . , 2021, ss.942 - 955. 10.3906/kim-2101-32
AMA KARTAL Z,Şahin O Synthesis, spectroscopic, thermal, crystal structure properties, and characterization ofnew Hofmann-$T_d$-type complexes with 3-aminopyridine . . 2021; 942 - 955. 10.3906/kim-2101-32
Vancouver KARTAL Z,Şahin O Synthesis, spectroscopic, thermal, crystal structure properties, and characterization ofnew Hofmann-$T_d$-type complexes with 3-aminopyridine . . 2021; 942 - 955. 10.3906/kim-2101-32
IEEE KARTAL Z,Şahin O "Synthesis, spectroscopic, thermal, crystal structure properties, and characterization ofnew Hofmann-$T_d$-type complexes with 3-aminopyridine ." , ss.942 - 955, 2021. 10.3906/kim-2101-32
ISNAD KARTAL, Zeki - Şahin, Onur. "Synthesis, spectroscopic, thermal, crystal structure properties, and characterization ofnew Hofmann-$T_d$-type complexes with 3-aminopyridine ". (2021), 942-955. https://doi.org/10.3906/kim-2101-32
APA KARTAL Z, Şahin O (2021). Synthesis, spectroscopic, thermal, crystal structure properties, and characterization ofnew Hofmann-$T_d$-type complexes with 3-aminopyridine . Turkish Journal of Chemistry, 45(3), 942 - 955. 10.3906/kim-2101-32
Chicago KARTAL Zeki,Şahin Onur Synthesis, spectroscopic, thermal, crystal structure properties, and characterization ofnew Hofmann-$T_d$-type complexes with 3-aminopyridine . Turkish Journal of Chemistry 45, no.3 (2021): 942 - 955. 10.3906/kim-2101-32
MLA KARTAL Zeki,Şahin Onur Synthesis, spectroscopic, thermal, crystal structure properties, and characterization ofnew Hofmann-$T_d$-type complexes with 3-aminopyridine . Turkish Journal of Chemistry, vol.45, no.3, 2021, ss.942 - 955. 10.3906/kim-2101-32
AMA KARTAL Z,Şahin O Synthesis, spectroscopic, thermal, crystal structure properties, and characterization ofnew Hofmann-$T_d$-type complexes with 3-aminopyridine . Turkish Journal of Chemistry. 2021; 45(3): 942 - 955. 10.3906/kim-2101-32
Vancouver KARTAL Z,Şahin O Synthesis, spectroscopic, thermal, crystal structure properties, and characterization ofnew Hofmann-$T_d$-type complexes with 3-aminopyridine . Turkish Journal of Chemistry. 2021; 45(3): 942 - 955. 10.3906/kim-2101-32
IEEE KARTAL Z,Şahin O "Synthesis, spectroscopic, thermal, crystal structure properties, and characterization ofnew Hofmann-$T_d$-type complexes with 3-aminopyridine ." Turkish Journal of Chemistry, 45, ss.942 - 955, 2021. 10.3906/kim-2101-32
ISNAD KARTAL, Zeki - Şahin, Onur. "Synthesis, spectroscopic, thermal, crystal structure properties, and characterization ofnew Hofmann-$T_d$-type complexes with 3-aminopyridine ". Turkish Journal of Chemistry 45/3 (2021), 942-955. https://doi.org/10.3906/kim-2101-32