| Literature DB >> 21711641 |
Yun Ding1, Liang-Bo Liang, Min Li, Ding-Fei He, Liang Xu, Pan Wang, Xue-Feng Yu.
Abstract
Manganese materials with attractive optical properties have been proposed for applications in such areas as photonics, light-emitting diodes, and bioimaging. In this paper, we have demonstrated multicolor Mn2+ luminescence in the visible region by controlling Ce3+-Mn2+ energy transfer in rare earth nanocrystals [NCs]. CeF3 and CePO4 NCs doped with Mn2+ have been prepared and can be well dispersed in aqueous solutions. Under ultraviolet light excitation, both the CeF3:Mn and CePO4:Mn NCs exhibit Mn2+ luminescence, yet their output colors are green and orange, respectively. By optimizing Mn2+ doping concentrations, Mn2+ luminescence quantum efficiency and Ce3+-Mn2+ energy transfer efficiency can respectively reach 14% and 60% in the CeF3:Mn NCs.Entities:
Year: 2011 PMID: 21711641 PMCID: PMC3211164 DOI: 10.1186/1556-276X-6-119
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1TEM images. TEM images of CeF3:Mn (a) and CePO4:Mn (b) NCs.
Figure 2XRD spectra. XRD spectra of CeF3:Mn and CePO4:Mn NCs.
Figure 3Absorption spectra attributed to electronic transitions. Absorption spectra of CeF3:Mn and CePO4:Mn NCs.
Figure 4PLE and PL spectra. PLE and PL spectra of CeF3:Mn (a) and CePO4:Mn (b) NCs.
Figure 5Investigated and . Mn2+ luminescence quantum efficiency (ηQE) and Ce3+-Mn2+ energy transfer efficiency (ηET) vs. molar percent of Mn2+ in CeF3:Mn (a) and CePO4:Mn NCs (b).