| Literature DB >> 35520799 |
Xu Yang1,2, Maohui Yuan1,2, Rui Wang1,2, Xiaofan Zhao1,2, Zining Yang1,2, Kai Han3,2, Hongyan Wang1,2, Xiaojun Xu1,3,2.
Abstract
Harnessing the color tuning capability of upconversion nanoparticles (UCNPs) is of great significance in the field of advanced bioimaging and color display. Here, we report the tunable size and upconversion luminescence (UCL) multicolor in CaF2:Yb3+/Ho3+/Ce3+ UCNPs, which were synthesized by a facile hydrothermal method. It was found that the size of these UCNPs could be controlled (from 600 to 30 nm) by varying the concentration of Ce3+ ions. Under the excitation of a 980 nm continuous-wave (CW) laser, the UCL color of these UCNPs can be tuned from green to red as the doped Ce3+ ions gradually increase from 0 to 10 mol% and the red-to-green (R/G) ratio is enhanced remarkably. It is suggested that the cross-relaxation (CR) processes between Ho3+ and Ce3+ ions contribute to the tunable multicolor and enhancement of the R/G ratio. The mechanism of these processes is well supported by the time-resolved decay and near infrared (NIR) emission measurements. This journal is © The Royal Society of Chemistry.Entities:
Year: 2019 PMID: 35520799 PMCID: PMC9063798 DOI: 10.1039/c9ra02232e
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Fig. 1(a–f) Typical TEM images of CaF2:Yb3+/Ho3+ (20/2 mol%) UCNPs doped with 0, 2, 4, 6, 8, 10 mol% Ce3+ ions, respectively.
Fig. 2XRD patterns of CaF2:Yb3+/Ho3+ UCNPs doped with Ce3+ ions of 0–10 mol%, and its local magnification.
Fig. 3(a) UC emission spectra of CaF2:Yb3+/Ho3+ UCNPs doping with different concentrations of Ce3+ ions (0, 4 and 10 mol%) at the power density of 31.8 W cm−2. The insets show the corresponding luminescence color of the UCNPs. (b) CIE chromaticity coordinates for the CaF2:Yb3+/Ho3+ UCNPs doping with different concentrations of Ce3+ ions. All excitation wavelengths are at 980 nm.
Fig. 4The R/G ratio of CaF2:Yb3+/Ho3+ UCNPs doped with different Ce3+ concentrations (0–10 mol%). (R and G represent red and green UC emissions, respectively.)
Fig. 5(a) Schematic energy level diagram and proposed UC mechanism of CaF2:Yb3+/Ho3+/Ce3+ UCNPs. (b) Pump power dependence of UC emission intensity of Ce3+-free and 10 mol% Ce3+ doped CaF2:Yb3+/Ho3+ UCNPs under the excitation of 980 nm CW laser. (c) Decay profiles of CaF2:Yb3+/Ho3+ UCNPs doped with different Ce3+ concentrations (0 and 10 mol%) monitored at 541 nm under 980 nm pulse laser excitation. (d) Measured NIR emission spectra of CaF2:Yb3+/Ho3+/Ce3+ UCNPs with different Ce3+ concentrations (0, 4 and 10 mol%) under the excitation of 980 nm CW laser.