82
Views
1
CrossRef citations to date
0
Altmetric
Original Articles

Mononuclear oxovanadium(Iv) complex containing VO(ONS) basic core: Synthesis, structure, thermal gravimetric analysis, and catalytic property

Pages 1380-1384 | Received 21 Nov 2016, Accepted 16 Jan 2017, Published online: 13 Sep 2017

References

  • Robson, R. L.; Eady, R. R.; Richardson, T. H.; Miller, R. W.; Hawkins, M.; Postgate, J. R. The alternative nitrogenase of azotobacter-chroococcum is a vanadium enzyme. Nature 1986, 322, 388–390.
  • Vilter, H. Peroxidases from phaeophyceae—A vanadium(V)-dependent peroxidase from ascophyllum-nodosum. Phytochemistry 1984, 23, 1387–1390.
  • de Boer, E.; van Kooyk, Y.; Tromp, M. G. M.; Plat, H.; Wever, R. Bromoperoxidase from ascophyllum-nodosum—A novel class of enzymes containing vanadium as a prosthetic group. Biochim. Biophys. Acta 1986, 869, 48–53.
  • de Boer, E.; Tromp, M. G.; M.; Plat, H.; Krenn, G. E.; Wever, R. Vanadium(V) as an essential element for haloperoxidase activity in marine brown-algae—Purification and characterization of a vanadium(V)-containing bromoperoxidase from laminaria-saccharina. Biochim. Biophys. Acta 1986, 872, 104–115.
  • Crans, D. C.; Trujillo, A. M.; Pharazyn, P. S.; Cohen, M. D. How environment affects drug activity: Localization, compartmentalization and reactions of a vanadium insulin-enhancing compound, dipicolinatooxovanadium(V). Coord. Chem. Rev. 2011, 255, 2178–2192.
  • Islam, M. N.; Kumbhar, A. A.; Kumbhar, A. S.; Zeller, M.; Butcher, R. J.; Dusane, M. B.; Joshi, B. N. Bis(maltolato)vanadium(III)-polypyridyl complexes: Synthesis, characterization, DNA cleavage, and insulin mimetic activity. Inorg. Chem. 2010, 49, 8237–8246.
  • Sun, Y.-B.; Xie, Q.; Li, W.; Ding, Y.; Ye, Y.-T. Synthesis, crystal structures, and insulin enhancement of vanadium(V) complexes derived from 2-bromo-N’-(2-hydroxybenzylidene)benzohydrazide. Synth. React. Inorg. Met.-Org. Nano-Met. Chem. 2016, 46, 1613–1617.
  • Ren, J.-Q.; Jiao, Q.-Z.; Wang, Y.-N.; Xu, F.-Y.; Cheng, X.-S.; You, Z.-L. Synthesis, structures and Helicobacter pylori urease inhibition of Schiff base vanadium complexes containing acetohydroxamate ligands. Chinese J. Inorg. Chem. 2014, 30, 640–648.
  • Cheng, X.-S.; Zhang, J.-C.; You, Z.-L.; Wang, X.; Li, H.-H. Synthesis, structures, and Helicobacter pylori urease inhibition of hydroxamate-coordinated oxovanadium complexes with benzohydrazone ligands. Transition Met. Chem. 2014, 39, 291–297.
  • Ashiq, U.; Ara, R.; Mahroof-Tahir, M.; Maqsood, Z. T.; Khan, K. M.; Khan, S. N.; Siddiqui, H.; Choudhary, M. I. Synthesis, spectroscopy, and biological properties of vanadium(IV)—hydrazide complexes. Chem. Biodivers. 2008, 5, 82–92.
  • Rath, S. P.; Mondal, S.; Chakravorty, A. Chemistry of hydrazonato oxovanadium(V) alkoxides derived from dihydric/monohydric alcohols. Inorg. Chim. Acta 1997, 263, 247–253.
  • Palacios, M. S.; Rocio, M. J.; Dominguez, S.; Gili, P.; RuizPerez, C.; RodriguezRomero, F. V.; Dance, J. M. Spectroscopic properties and crystal structure of an oxovanadium(V) alkoxo complex with the ligand: 5-chloro-o-hydroxyacetophenone-salicylhydrazide. Polyhedron 1997, 16, 1143–1147.
  • Nica, S.; Rudolph, M.; Gorls, H.; Plass, W. Structural characterization and electrochemical behavior of oxovanadium(V) complexes with N-salicylidene hydrazides. Inorg. Chim. Acta 2007, 360, 1743–1752.
  • You, Z.-L.; Shi, D.-H.; Zhang, J.-C.; Ma, Y.-P.; Wang, C.; Li, K. Synthesis, structures, and urease inhibitory activities of oxovanadium(V) complexes with Schiff bases. Inorg. Chim. Acta 2012, 384, 54–61.
  • Sutradhar, M.; Barman, T. R.; Mukherjee, G.; Drew, M. G. B.; Ghosh, S. Synthesis, structural characterization and electrochemical activity of oxidovanadium(IV/V) complexes of a diprotic ONS chelating ligand. Inorg. Chim. Acta 2010, 363, 3376–3383.
  • Asgedom, G.; Sreedhara, A.; Kivikoski, J.; Valkonen, J.; Kolehmainen, E.; Rao, C. P. Alkoxo bound monooxo- and dioxovanadium(V) complexes: Synthesis, characterization, X-ray crystal structures, and solution reactivity studies. Inorg. Chem. 1996, 35, 5674–5683.
  • Moon, M.; Pyo, M.; Myoung, Y. C.; II Ahn, C.; Lah, M. S. Square pyramidal dialkoxo-bound monooxo-vanadium(V) complex and its behavior in solution. Inorg. Chem. 2001, 40, 554–558.
  • Grüning, C.; Schmidt, H.; Rehder, D. A water-soluble, neutral {aqua-V-v}(2) complex with a biomimetic ONO ligand set. Inorg. Chem. Commun. 1999, 2, 57–59.
  • Rowe, R. A.; Jones, M. M. Preparation from vanadium(V) oxide through prior reduction to oxovanadium(IV) ion. Inorg. Synth. 1957, 5, 114–114.
  • Chattopadhyay, D.; Mazumdar, S. K.; Banerjee, T.; Ghosh, S.; Mak, T. C. W. Structure of salicylaldehyde thiosemicarbazone. Acta Crystallogr. 1988, 44, 1025–1028.
  • Dutta, R. L.; Ghosh, S. Oxo-vanadium(IV) heterochelates. J. Inorg. Nucl. Chem. 1966, 28, 247–250.
  • You, Z.; Zheng, B.; Yang, T.; Liu, F.; Cheng, X.-S. Synthesis, structures, and insulin-like activity of oxodovanadium(V) complexes derived from 2-chloro-N’-(3-ethoxy-2-hydroxybenzylidene)benzohydrazide. J. Coord. Chem. 2016, 69, 1371–1379.
  • Li, L.-X.; Sun, Y.; Xie, Q.; Sun, Y.-B.; Li, K.-H.; Li, W.; You, Z.-L. A maltolato-coordinated oxovanadium(V) complex derived from N’-(3-bromo-5-chloro-2-hydroxybenzylidene)-3-hydroxyl-4-methoxybenzohydrazide: Synthesis, crystal structure, and insulin-enhancing activity. Chin. J. Inorg. Chem. 2016, 32, 369–376.
  • Sheldrick, G. M. A history of Shelxtl. Acta Crystallogr. 2008, A64, 112–122.
  • Sheldrick, G. M. SADABS, Program for Empirical Absorption Correction of Area Detector Data; University of Göttingen: Göttingen, Germany, 1996.
  • SAINT-Plus, Software Users Guide, Version 6.0; Bruker Analytical X-ray Systems: Madison, WI, 1999.
  • Dutta, S. K.; Tiekink, E. R. T.; Chaudhury, M. Mono- and dinuclear oxovanadium(IV) compounds containing VO(ONS) basic core: Synthesis, structure and spectroscopic properties. Polyhedron 1997, 16, 1863–1871.
  • Samanta, S.; Ghosh, D.; Mukhopadhyay, S.; Endo, A.; Weakley, T. J. R.; Chaudhury, M. Oxovanadium(IV) and -(V) complexes of dithiocarbazate-based tridentate Schiff base ligands: Syntheses, structure, and photochemical reactivity of compounds involving imidazole derivatives as coligands. Inorg. Chem. 2003, 42, 1508–1517.
  • Geary, W. J. Use of conductivity measurements in organic solvents for characterisation of coordination compounds. Coord. Chem. Rev. 1971, 7, 81–122.
  • Qu, D.; Niu, F.; Zhao, X.; Yan, K.-X.; Ye, Y.-T.; Wang, J.; Zhang, M.; You, Z. Synthesis, crystal structures, and urease inhibition of an acetohydroxamate-coordinated oxovanadium(V) complex derived from N’-(3-bromo-2-hydroxybenzylidene)-4-methoxybenzohydrazide. Bioorg. Med. Chem. 2015, 23, 1944–1949.
  • Pan, L.; Wang, C.; Yan, K.; Zhao, K.; Sheng, G.; Zhu, H.; Zhao, X.; Qu, D.; Niu, F.; You, Z. Synthesis, structures and Helicobacter pylori urease inhibitory activity of copper(II) complexes with tridentate aroylhydrazone ligands. J. Inorg. Biochem. 2016, 159, 22–28.
  • Dutta, S. K.; Tiekink, E. R. T.; Chaudhury, M. Mono- and dinuclear oxovanadium(IV) compounds containing VO(ONS) basic core: Synthesis, structure and spectroscopic properties. Polyhedron 1997, 16, 1863–1871.
  • Maurya, M. R.; Kumar, A. Oxovanadium(IV) based coordination polymers and their catalytic potentials for the oxidation of styrene, cyclohexene and trans-stilbene. J. Mol. Catal. A: Chem. 2006, 250, 190–198.
  • Rayati, S.; Sadeghzadeh, N.; Khavasi, H. R. A new di-mu-oxo bis[oxovanadium(V)] complex containing Schiff base ligand derived from 1,2-diaminopropane and 2′-hydroxy-4′-methoxyacetophenone: Synthesis, structure and catalytic properties. Inorg. Chem. Commun. 2007, 10, 1545–1548.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.