Home Syntheses, structures, and catalytic properties of two arene-ruthenium(II) complexes bearing N-(2-pyridinyl)aminodiphenylphosphine sulfide ligands
Article
Licensed
Unlicensed Requires Authentication

Syntheses, structures, and catalytic properties of two arene-ruthenium(II) complexes bearing N-(2-pyridinyl)aminodiphenylphosphine sulfide ligands

  • Fule Wu , Jiling Gu , Xin Chen , Ai-Quan Jia and Qian-Feng Zhang EMAIL logo
Published/Copyright: March 24, 2018
Become an author with De Gruyter Brill

Abstract

Treatment of [(arene)Ru(μ-Cl)Cl]2 with Ph2P(S)NH(2-py) in the presence or absence of base gave two arene-ruthenium(II) complexes [(η6-p-cymene)Ru{κ2-N,N-Ph2P(S)N(2-py)}Cl] (1) and [(η6-benzene)Ru{κ1-N-Ph2P(S)NH(2-py)}Cl2] (2), which have been characterized by infrared, nuclear magnetic resonance spectroscopies, and mass spectrometry along with microanalyses. Crystal structures of Ph2P(S)NH(2-py) · ¼C6H14, 1 and 2 · ½CH2Cl2 were determined by single-crystal X-ray diffraction. Two arene-ruthenium(II) complexes were tested as precatalysts for the transfer hydrogenation of acetophenone to give 1-phenyl ethanol.

Acknowledgments

This project was supported by the Natural Science Foundation of China (21372007).

References

[1] E. Smolensky, M. Kapon, S. E. Moris, Organometallics2007, 26, 4510.10.1021/om700455eSearch in Google Scholar

[2] Y. Yang, K. Lv, L. F. Wang, Y. Wang, D. M. Cui, Chem. Commun. 2010, 46, 6150.10.1039/c0cc00297fSearch in Google Scholar PubMed

[3] S. M. Aucott, A. M. Z. Slawin, J. D. Woollins, J. Chem. Soc. Dalton Trans.2000, 2559.10.1039/b003294hSearch in Google Scholar

[4] M. F. Fillat, M. C. Gimeno, A. Laguna, E. Latorre, L. Ortego, M. D. Villacampa, Eur. J. Inorg. Chem.2011, 1487.10.1002/ejic.201001195Search in Google Scholar

[5] E. Smolensky, M. Kapon, J. D. Woollins, M. S. Eisen, Organometallics2005, 24, 3255.10.1021/om050015bSearch in Google Scholar

[6] Ö. Öztopcu, K. Mereiter, M. Puchberger, K. A. Kirchner, Dalton Trans. 2011, 40, 7008.10.1039/c1dt10377fSearch in Google Scholar PubMed

[7] B. Bichler, L. F. Veiros, Ö. Öztopcu, M. Puchberger, K. Mereiter, K. Matsubara, K. A. Kirchner, Organometallics2011, 30, 5928.10.1021/om200766ySearch in Google Scholar

[8] W. J. Zhao, S. J. Zhang, Y. Deng, Z. Z. Zhang, Y. F. Ma, W. P. Huang, H. G. Wang, Chin. J. Struct. Chem. 1996, 15, 44.Search in Google Scholar

[9] W. Lackner-Warton, S. Tanaka, C. M. Standfest-Hauser, Ö. Öztopcu, J. C. Hsieh, K. Mereiter, K. Kirchner, Polyhedron2010, 29, 3097.10.1016/j.poly.2010.08.014Search in Google Scholar

[10] X. Y. Wang, Y. Li, Q. Ma, Q. F. Zhang, Organometallics2010, 29, 2752.10.1021/om100209kSearch in Google Scholar

[11] A. Q. Jia, W. H. Chiu, X. H. Huang, W. H. Leung, Q. F. Zhang, J. Organomet. Chem.2014, 761, 98.10.1016/j.jorganchem.2014.03.010Search in Google Scholar

[12] G. M. Sheldrick, Sadabs, University of Göttingen, Göttingen (Germany), 1996.Search in Google Scholar

[13] G. M. Sheldrick. Shelxtl (version 5.1) Software Reference Manual, Bruker AXS Inc., Madison, Wisconsin (USA), 1997.Search in Google Scholar

[14] G. M. Sheldrick, Acta Crystallogr.2008, A64, 112.10.1107/S0108767307043930Search in Google Scholar

[15] N. Kuźnik, S. Krompiec, T. Bieg, S. Baj, K. Skutil, A. Chrobok, J. Organomet. Chem.2003, 665, 167.10.1016/S0022-328X(02)02111-3Search in Google Scholar

Received: 2017-9-3
Accepted: 2017-11-17
Published Online: 2018-3-24
Published in Print: 2018-4-25

©2018 Walter de Gruyter GmbH, Berlin/Boston

Articles in the same Issue

  1. Frontmatter
  2. In this Issue
  3. Does Lewis basicity correlate with catalytic performance in zerovalent group 8 complexes?
  4. Crystal structure and luminescence properties of a new dinuclear bismuth(III) coordination polymer containing three types of ligands
  5. Syntheses, structures, and catalytic properties of two arene-ruthenium(II) complexes bearing N-(2-pyridinyl)aminodiphenylphosphine sulfide ligands
  6. Synthesis, characterization, anticancer and antimicrobial study of arene ruthenium(II) complexes with 1,2,4-triazole ligands containing an α-diimine moiety
  7. Green synthesis of α-aminophosphonates using ZnO nanoparticles as an efficient catalyst
  8. Nano-NiZr4(PO4)6 as a superior catalyst for the synthesis of propargylamines under ultrasound irradiation
  9. Efficient pseudo five-component synthesis of 4,4′-(arylmethylene)-bis(3-methyl-1-phenyl-1H-pyrazol-5-ol) derivatives promoted by a novel ionic liquid catalyst
  10. Hydrothermal synthesis and crystal structure of a bisupporting Keggin-polyoxometalate hybrid compound decorated with a copper(II) complex unit
  11. Synthesis, crystal structure, luminescence and electrochemical properties of a Salamo-type trinuclear cobalt(II) complex
  12. New cholic acid analogs: synthesis and 17β-hydroxydehydrogenase (17β-HSD) inhibition activity
  13. Synthesis, vibrational spectra and single-crystal structure determination of lithium tricyanomethanide Li[C(CN)3]
  14. Silber(I)-cyanid-Komplexe mit Aminen und Azaaromaten
  15. The alkaline earth-palladium-germanides Sr3Pd4Ge4 and BaPdGe
  16. Equiatomic rare earth rhodium plumbides RERhPb (RE=Y, La–Nd, Sm, Gd–Lu) with ZrNiAl-type structure
  17. Notes
  18. Synthesis and crystal structure of [azido-bis(cis-1,2-diaminocyclohexane)copper(II)] chloride trihydrate
  19. A Co(II) complex from a pyridylamide ligand: synthesis and structural characterization
Downloaded on 18.9.2025 from https://www.degruyterbrill.com/document/doi/10.1515/znb-2017-0161/html
Scroll to top button