| Literature DB >> 20596404 |
Daixun Jiang1, Lixin Cao, Wei Liu, Ge Su, Hua Qu, Yuanguang Sun, Bohua Dong.
Abstract
In this paper the influence of ZnO shell thickness on the luminescence properties of Mn-doped ZnS nanoparticles is studied. Transmission electron microscopy (TEM) images showed that the average diameter of ZnS:Mn nanoparticles is around 14 nm. The formation of ZnO shells on the surface of ZnS:Mn nanoparticles was confirmed by X-ray diffraction (XRD) patterns, high-resolution TEM (HRTEM) images, and X-ray photoelectron spectroscopy (XPS) measurements. A strong increase followed by a gradual decline was observed in the room temperature photoluminescence (PL) spectra with the thickening of the ZnO shell. The photoluminescence excitation (PLE) spectra exhibited a blue shift in ZnO-coated ZnS:Mn nanoparticles compared with the uncoated ones. It is shown that the PL enhancement and the blue shift of optimum excitation wavelength are led by the ZnO-induced surface passivation and compressive stress on the ZnS:Mn cores.Entities:
Year: 2008 PMID: 20596404 PMCID: PMC2893950 DOI: 10.1007/s11671-008-9205-6
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Dosage of Zn(NO3)2aqueous solution (0.05 M) used in forming ZnO shells. (In the parentheses, 0, 0.1, 0.2, 0.3, 0.4, 0.5 and 1 are set to be the mole ratios of Zn2+ions in shells and cores)
| Samples | Volume of Zn(NO3)2aqueous solution (mL) |
|---|---|
| ZnS:Mn/ZnO(0) | 0 |
| ZnS:Mn/ZnO(0.1) | 10 |
| ZnS:Mn/ZnO(0.2) | 20 |
| ZnS:Mn/ZnO(0.3) | 30 |
| ZnS:Mn/ZnO(0.4) | 40 |
| ZnS:Mn/ZnO(0.5) | 50 |
| ZnS:Mn/ZnO(1) | 100 |
Figure 1XRD patterns of ZnS:Mn nanoparticlesawithout andb–ewith ZnO shells of different thicknesses
Figure 2TEM images of ZnS:Mn and ZnS:Mn/ZnO nanoparticles.aZnS:Mn.bZnS:Mn/ZnO(1).cHRTEM iamge of a single ZnS:Mn nanoparticle.dHRTEM image of ZnS:Mn/ZnO(1) nanoparticle showing the interface between shell and core
Figure 3XPS spectra of sample ZnS:Mn/ZnO(0.5).aSurvey spectrum.bZn 2p3/2 spectrum;cO1s spectrum.dS2p spectrum
Figure 4Representative XPS spectrum of sample ZnS:Mn/ZnO(0.5) showing relative change in O/S atomic ratio with sputtering time
Figure 5PL spectra excited at 350 nm of ZnS:Mn nanoparticlesawithout andb–gwith ZnO shells of different thickness
Figure 6PLE spectra monitored at 580 nm of ZnS:Mn nanoparticlesawithout andb–gwith ZnO shells of different thicknesses