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Ligand-Mediated "Turn On," High Quantum Yield Near-Infrared Emission in Small Gold Nanoparticles.
Crawford, Scott E; Andolina, Christopher M; Smith, Ashley M; Marbella, Lauren E; Johnston, Kathryn A; Straney, Patrick J; Hartmann, Michael J; Millstone, Jill E.
Afiliación
  • Crawford SE; Department of Chemistry, University of Pittsburgh , Pittsburgh, Pennsylvania 15260, United States.
  • Andolina CM; Department of Chemistry, University of Pittsburgh , Pittsburgh, Pennsylvania 15260, United States.
  • Smith AM; Department of Chemistry, University of Pittsburgh , Pittsburgh, Pennsylvania 15260, United States.
  • Marbella LE; Department of Chemistry, University of Pittsburgh , Pittsburgh, Pennsylvania 15260, United States.
  • Johnston KA; Department of Chemistry, University of Pittsburgh , Pittsburgh, Pennsylvania 15260, United States.
  • Straney PJ; Department of Chemistry, University of Pittsburgh , Pittsburgh, Pennsylvania 15260, United States.
  • Hartmann MJ; Department of Chemistry, University of Pittsburgh , Pittsburgh, Pennsylvania 15260, United States.
  • Millstone JE; Department of Chemistry, University of Pittsburgh , Pittsburgh, Pennsylvania 15260, United States.
J Am Chem Soc ; 137(45): 14423-9, 2015 Nov 18.
Article en En | MEDLINE | ID: mdl-26544649
ABSTRACT
Small gold nanoparticles (∼1.4-2.2 nm core diameters) exist at an exciting interface between molecular and metallic electronic structures. These particles have the potential to elucidate fundamental physical principles driving nanoscale phenomena and to be useful in a wide range of applications. Here, we study the optoelectronic properties of aqueous, phosphine-terminated gold nanoparticles (core diameter = 1.7 ± 0.4 nm) after ligand exchange with a variety of sulfur-containing molecules. No emission is observed from these particles prior to ligand exchange, however the introduction of sulfur-containing ligands initiates photoluminescence. Further, small changes in sulfur substituents produce significant changes in nanoparticle photoluminescence features including quantum yield, which ranges from 0.13 to 3.65% depending on substituent. Interestingly, smaller ligands produce the most intense, highest energy, narrowest, and longest-lived emissions. Radiative lifetime measurements for these gold nanoparticle conjugates range from 59 to 2590 µs, indicating that even minor changes to the ligand substituent fundamentally alter the electronic properties of the luminophore itself. These results isolate the critical role of surface chemistry in the photoluminescence of small metal nanoparticles and largely rule out other mechanisms such as discrete (Au(I)-S-R)n impurities, differences in ligand densities, and/or core diameters. Taken together, these experiments provide important mechanistic insight into the relationship between gold nanoparticle near-infrared emission and pendant ligand architectures, as well as demonstrate the pivotal role of metal nanoparticle surface chemistry in tuning and optimizing emergent optoelectronic features from these nanostructures.

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: J Am Chem Soc Año: 2015 Tipo del documento: Article País de afiliación: Estados Unidos

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: J Am Chem Soc Año: 2015 Tipo del documento: Article País de afiliación: Estados Unidos