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Advancing the coordination abilities of 2,6-diacetylpyridine bis(benzoylhydrazone) with tin through modifications of axial ligands: Synthesis, spectroscopic features, and structural profiling

  • Tushar S. Basu Baul
  • , Avishek Khatiwara
  • , Amon Das
  • , Andrew Duthie
  • , Sean Parkin

Producción científica: Articlerevisión exhaustiva

3 Citas (Scopus)

Resumen

A series of seven-coordinate pentagonal-bipyramidal (PBPY-7) Sn(IV) complexes with the pentadentate pyridine-based pro-ligand 2,6-diacetylpyridine bis(benzoylhydrazone), H2L, and different axial ligands have been synthesized. Reactions of H2L with R2SnO (where R = Me, n-Bu, n-Oct, or Bz) in anhydrous toluene, or with RSnCl3 (where R = n-Bu or Ph) in anhydrous toluene (or acetonitrile in the case of PhSnCl3), produced a series of novel seven-coordinate complexes: [Me2Sn(L)] (1), [n-Bu2Sn(L)] (2), [n-Oct2Sn(L)] (3), [Bz2Sn(L)] (4), [n-BuSn(L)Cl]·0.5C7H8 (5), and [PhSn(L)Cl] (6). By taking advantage of lability of the axial Cl ligands in complex 5, two neutral PBP Sn(IV) complexes [n-BuSn(L)N3] (7) and [n-BuSn(L)NCS] (8) with different axial ligands were obtained and characterized. In a separate effort to obtain single crystals of the dibenzyltin compound [Bz2Sn(L)] (4), a few crystals were successfully extracted from crystallization experiments in chloroform. Diffraction studies of these crystals revealed a composition of [Sn(L)Cl2]·CHCl3 (9). In these complexes, the double-deprotonated chelating ligand occupies the equatorial plane, while the two axial ligands can be two R groups, two Cl ligands, or a combination of one R group with a Cl, N3, or NCS ligand. The compounds 1–8 (9 only by IR) were fully characterized using Fourier transform infrared (FT-IR) spectroscopy, high-resolution mass spectrometry (HRMS), and solution-state Fourier transform nuclear magnetic resonance (FT-NMR) spectroscopy. Single crystal X-ray diffraction analysis confirmed that all complexes 1–9 exhibit a PBP geometry. Notably, all complexes display significant in-plane distortion of the SnN3O2 pentagon due to shifts in the Sn(IV) ion position.

Idioma originalEnglish
Número de artículo142137
Número de páginas11
PublicaciónJournal of Molecular Structure
Volumen1336
DOI
EstadoPublished - ago 5 2025

Nota bibliográfica

Publisher Copyright:
© 2025 Elsevier B.V.

Financiación

AK and AD thank University Grants Commission, New Delhi for the award of non-NET fellowships. Authors (TSBB, AK and AD) thank SAIF-NEHU, Shillong for providing NMR measurements and the DST-FIST program (No. SR/FST/CS-II/2019/99(C)), Government of India, for providing the HRMS instrument to the Department of Chemistry, NEHU, Shillong. Deakin University's Advanced Characterization Facility is acknowledged for use of the NMR instrumentation. SP thanks the US NSF MRI program (grant CHE-1625732).

FinanciadoresNúmero del financiador
University Grants Commission
North-Eastern Hill University India
SAIF-NEHU
Deakin University
Department of Science and Technology, Ministry of Science and Technology, IndiaSR/FST/CS-II/2019/99
National Science Foundation Arctic Social Science ProgramCHE-1625732

    ASJC Scopus subject areas

    • Analytical Chemistry
    • Spectroscopy
    • Organic Chemistry
    • Inorganic Chemistry

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