| Literature DB >> 30251076 |
Andrey N Ipatov1, Leonid G Gerchikov2, Claude Guet3.
Abstract
A new type of dipole plasmon excitations in colloidal highly doped ZnO nanocrystals has been studied by means of many-body quantum mechanical approach. We demonstrate that in photodoped ZnO nanocrystals, the conduction band electrons are localized close to the surface and the plasmon oscillations are induced by their angular motion. The transition of this plasmon mode from classical to quantum regime is defined by the nanocrystal size. The size dependence of the resonance frequency which results from quantum effects is in remarkable agreement with experimental observations.Entities:
Keywords: Nanocrystal; Photoabsorbtion; Plasmon
Year: 2018 PMID: 30251076 PMCID: PMC6153261 DOI: 10.1186/s11671-018-2710-3
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Radial density distributions for NCs with different numbers of delocalized electrons, N=18 (solid black like), 50 (dashed blue line), 128 (dotted red line). In the inset, the reduced mean radius (black) and its dispersion (blue) is represented as a function of NC radius
Fig. 2Oscillator strength distributions and corresponding photoabsorbtion peak profiles calculated within RPAE approach for NCs with N=8 (a), 32 (b), 50 (c), and 128 (d) conduction band electrons. Comparison of experimental [21] (black squares) and calculated (solid line) resonance peak profiles for NC with R≈6 nm (d)
Fig. 3Size dependence of LSPR energy. Experimental values [21] (red stars), RPA with local exchange (blue circles), energies of single-particle transition (green diamonds in lower curve). Classical value (13) is shown by the horizontal dashed line