Fine-tuning the luminescence and HOMO-LUMO energy levels in tetranuclear gold(I) fluorinated amidinate complexes

  1. Abdou, H.E. 3
  2. Mohamed, A.A. 2
  3. López-De-Luzuriaga, J.M. 1
  4. Monge, M. 1
  5. Fackler Jr. 3
  1. 1 Universidad de La Rioja
    info

    Universidad de La Rioja

    Logroño, España

    ROR https://ror.org/0553yr311

  2. 2 Delaware State University
    info

    Delaware State University

    Dover, Estados Unidos

    ROR https://ror.org/03g35dg18

  3. 3 Texas A&M International University
    info

    Texas A&M International University

    Laredo, Estados Unidos

    ROR https://ror.org/028861t28

Journal:
Inorganic Chemistry

ISSN: 0020-1669

Year of publication: 2012

Volume: 51

Issue: 4

Pages: 2010-2015

Type: Article

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DOI: 10.1021/IC2010634 SCOPUS: 2-s2.0-84857766621 WoS: WOS:000300466300009 GOOGLE SCHOLAR

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Abstract

Tetranuclear gold(I) fluorinated amidinate complexes have been synthesized and their photophysical properties and structures described. DFT calculations were carried out to illustrate how a minor change in the ligand resulted in a loss of emission in the perfluorophenyl amidinate complex compared with nonfluorinated phenyl amidinate complexes reported previously. The fluorinated complexes reported here [Au(ArN) 2C(H)] 4 (1, Ar = 4-FC 6H 4; 2, 3,5-F 2C 6H 3; 3, 2,4,6-F 3C 6H 2; 4, 2,3,5,6-F 4C 6H) emit in the blue-green region at 470, 1, 478, 2, 508, 3, and 450 nm, 4, by excitation at ca. 375 nm at room temperature with nanosecond lifetimes. The emissions observed at 77 K in the solid state show structured emission for complexes 1 and 2, with a vibrational spacing of ca. 1200 and 1500 cm -1, corresponding to the vibrational modes of the amidinate ligand. The pentafluorophenyl derivative 5, Ar = C 6F 5, shows no photoluminescence in the solid state nor in the solution. This result is different from results in which the pentafluorophenyl group is attached to a phenylpyridine ligand in an Ir(III) complex and other organics. This quenching appears to be related to a nonradiative de-excitation process caused by the ππ*-πσ* crossover in the excited state of the pentafluorophenyl amidinate ligand. With increasing numbers of fluorine atoms, there is a progressive decrease in the contribution of the amidinate ligands to the corresponding HOMO orbital. There also is a slight decrease in the ligand contribution to the LUMO with increased numbers of fluorine atoms and an exchange of the character of the orbitals of the gold centers. © 2012 American Chemical Society.