Chem. Mater., 19 (25), 61016106 10.1021/cm071410q
Web Release Date: November 15, 2007

Copyright © 2007 American Chemical Society

Composition and Size-Dependent Extinction Coefficient of Colloidal PbSe Quantum Dots

Iwan Moreels, Karel Lambert, David De Muynck, Frank Vanhaecke, Dirk Poelman,§ José C. Martins, Guy Allan, and Zeger Hens*

Physics and Chemistry of Nanostructures, Laboratory of Analytical Chemistry, Department of Solid State Sciences, and NMR and Structure Analysis Unit, Ghent University, B-9000 Ghent, Belgium, and Institut d'Electronique, de Microélectronic et de Nanotechnologie, F-59652, Villeneuve d'Ascq Cedex, France

Received May 24, 2007

Abstract:

Inductively coupled plasma mass spectrometry (ICP-MS) was combined with UV–vis−NIR spectrophotometry and transmission electron microscopy to determine the nanocrystal composition and molar extinction coefficient ε of colloidal PbSe quantum dot (Q-PbSe) suspensions. The ICP-MS results show a nonstoichiometric Pb/Se ratio, with a systematic excess of lead for all samples studied. The observed ratio is consistent with a faceted spherical Q-PbSe model, composed of a quasi stoichiometric Q-PbSe core terminated by a Pb surface shell. At high photon energies, we find that ε scales with the nanocrystal volume, irrespective of the Q-PbSe size. From ε, we calculated a size-independent absorption coefficient. Its value is in good agreement with the theoretical value for bulk PbSe. At the band gap, ε is size-dependent. The resulting absorption coefficient increases quadratically with decreasing Q-PbSe size. Calculations of the oscillator strength of the first optical transition are in good agreement with theoretical tight binding calculations, showing that the oscillator strength increases linearly with Q-PbSe size.

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