| Literature DB >> 28610395 |
Chengqi E1, Yanyan Bu1, Lan Meng1,2, Xiaohong Yan3,4,5,6.
Abstract
Er3+-doped and Er3+-Tm3+-co-doped transparent hexagonal NaGdF4 glass ceramics are fabricated via melt-quenching method. The emissions of Er3+-doped NaGdF4 glass ceramics are adjusted from the green to red by varying the concentration of Tm3+ ion under the excitation of 980 nm. The spectrum, thermal quenching ratio, fluorescence intensity ratios, and optical temperature sensitivity of the transparent glass ceramics are observed to be dependent on the pump power. The maximum value of relative sensitivity reaches 0.001 K-1 at 334 K in Er3+-doped NaGdF4, which shifts toward the lower temperature range by co-doping with Tm3+ ions, and has a maximum value of 0.00081 K-1 at 292 K. This work presents a method to improve the optical temperature behavior of Er3+-doped NaGdF4 glass ceramics. Moreover, the relative sensitivity SR is proved to be dependent on the pump power of 980-nm lasers in Er3+-doped NaGdF4 and Er3+-Tm3+-co-doped NaGdF4.Entities:
Keywords: Er3+; Excitation power; NaGdF4 glass ceramic; Sensitivity; Tm3+
Year: 2017 PMID: 28610395 PMCID: PMC5468182 DOI: 10.1186/s11671-017-2167-9
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1(a) TEM and (b) HRTEM micrograph images of NGF3. c XRD pattern of the NGF3 (JCPDS 27-0699)
Fig. 2The absorption spectra of NGF1 and NGF3
Fig. 3(a) The luminescence spectra and (b) red to green intensity ratio of 1%Er3+,x%Tm3+-co-doped NaGdF4 (x = 0, 0.05, 0.1, 0.15, 0.2)
Fig. 4The energy level diagram showing the UC mechanism in NGF3
Fig. 5UC emission spectra of (a) NGF1 and (b) NGF3 in the wavelength range of 200–900 nm at various temperatures
Fig. 6Thermal quenching ratios (RQ) of (a) NGF1, (b) NGF3 at low 66.8 mW/cm2 excitation power and at high 322.4 mW/cm2 excitation power
Fig. 7Log–log plots of intensity and pumping power for (a) 542 nm, (b) 660 nm emissions at 298 and 573 K in NGF3
Fig. 8Excitation power-dependent emission intensity ratio glass ceramics of 2H11/2/4S3/2 on (a) NGF1 and (b) NGF3
Fig. 9Excitation power-dependent relative sensitivity SR of (a) NGF1 and (b) NGF3
Values of sensitivity for various rare earths are presented, and the involved transitions from thermally coupled levels as well as temperature range are included
| Rare earth ions | Host | Transitions | Temperature range (K) |
| Ref. |
|---|---|---|---|---|---|
| Er3+ | NaGdF4 | 2H11/2,4S3/2→4I15/2 | 298–593 | 806/T2 | This work |
| Er3+,Tm3+ | NaGdF4 | 2H11/2,4S3/2→4I15/2 | 298–593 | 737/T2 | This work |
| Tm3+,Yb3+ | NaNbO3 | 1G4,3F2,3,3H4→3H6 | 293–353 | 93.53/T2 | [ |
| Tm3+,Yb3+ | Y2O3 | 1D2→3F4,3H4→3H6 | 10–300 | 566.91/T2 | [ |
| Ho3+ | In-Zn-Sr-Ba | 5F4/5S2→5I8,5I7 | 20–300 | 181.64/T2 | [ |
| Ho3+ | TeO2 | 5F4/5S2→5I8 | 265–440 | 255/T2 | [ |