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1.
《Ceramics International》2020,46(3):3345-3352
The luminescent characteristics of spherical titanium dioxide (TiO2) nanoparticles (NP's) doped with Sm3+/Yb3+ and Tm3+/Yb3+ with and without a silica coating were analyzed. These nanoparticles were synthesized using the spray pyrolysis technique and coated with silica through a wet chemical process. The Sm3+/Tm3+ and Yb3+ doping induces a triphasic poly-crystalline structure of rutile and anatase TiO2 and a Sm2Ti2O7/Tm2Ti2O7 cubic phase. A Williamson-Hall analysis was used to monitor the tensions of the NP's crystallites at the various doping concentrations and with addition of the silica shell. The luminescent spectra presented the characteristic emission peaks for the electronic energy levels transitions of the Sm3+/Tm3+ and Yb3+ ions. The Sm3+/Yb3+ co-doped NP's showed a maximum emission peak in the visible region at 612 nm, associated with 4G5/26H7/2 transitions of the Sm3+ ions. The IR emission peak at 973 nm (2F5/22F7/2) pertaining to Yb3+. For the combination of Tm3+/Yb3+, two emissions associated with Tm3+ ions were observed at 440 nm (1D23F4) and 806 nm (3H43H6). The emission at 973 nm (2F5/22F7/2) is correlated to the Yb3+ ions. Silica coating of the NP's resulted in luminescence emission intensity increase of about 4 times.  相似文献   

2.
《Ceramics International》2023,49(7):10829-10838
Bi2O3:Yb3+/Er3+ nanoparticles with flower-like morphology were easily synthesized by urea-assisted coprecipitation reactions. The influences of calcination temperature and doping concentration on the crystal phase structures of Bi2O3 and Bi2O3:x%Yb3+/2%Er3+ (x = 0–30) were systematically investigated by XRD analysis. The experimental results revealed that lanthanide doping could effectively improve the thermal stability of Bi2O2CO3 samples, and the monoclinic-to-tetragonal-to-cubic phase transitions of Bi2O3 were implemented by controlling calcination temperatures and introducing smaller lanthanide ions (Ln3+) into the host lattices. Based on the analysis of TG and DSC curves, we found that the fundamental reason for this phase transition was the different stabilities of each crystalline phase under different doping conditions. Upon 980 nm laser excitation, Bi2O3:x%Yb3+/2%Er3+ samples presented near single-band red upconversion emission owing to the efficient energy reabsorption of the Bi2O3 host to Er3+ emission.  相似文献   

3.
《Ceramics International》2023,49(12):20200-20209
A variety of lanthanide ions doped bismuth titanate (Bi4Ti3O12) luminescent materials with eminent down-conversion (DC) and up-conversion (UC) luminescence performance have been fabricated via a facile sol-gel approach. The XRD, XPS, and EDX elemental mapping results confirm the phase structure of orthorhombic Bi4Ti3O12 (BTO), and the lanthanide activator ions occupy the Bi3+ lattice sites in the BTO crystal. Under UV or NIR excitation, the Eu3+, Yb3+/Ln3+ (Ln = Er, Tm, and Ho) doped Bi4Ti3O12 samples exhibit characteristic red, green, blue, and green emissions. The luminescent mechanisms of the BTO:Eu3+ and BTO:Yb3+/Ln3+ samples are discussed based on the energy level diagrams. The doping concentrations of Eu3+, Yb3+, Er3+, Tm3+, Ho3+ ions and annealing temperature and time are optimized, whose optimal values are determined to be 14, 8, 1, 0.4, 1 mol% and 800 oC, 4 h. The as-obtained LED devices fabricated by Bi4Ti3O12:Eu3+ and Yb3+/Ln3+ phosphors exhibit dazzling multicolor visible light emissions from different Ln3+ ions. The results indicate that the as-obtained Ln3+ doped BTO phosphors may be potentially utilized in LED devices and solid-state lighting. Furthermore, the Eu3+ and Er3+ co-doped BTO samples exhibit different DC and UC luminescence spectral profiles when excited at various UV, visible, or NIR wavelengths, revealing their eminent feasibility and great potential in anti-counterfeiting applications.  相似文献   

4.
Color-tunable up-conversion powder phosphors Zn(AlxGa1-x)2O4: Yb3+,Tm3+,Er3+ were synthesized via high temperature solid-state reaction. Also, the morphological and structural characterization, up-conversion luminescent properties were all investigated in this paper. In brief, under the excitation of a 980?nm laser, all powders have same emission peaks containing blue emission at 477?nm (attributed to 1G43H6 transition of Tm3+ ions), green emission at 526?nm and 549?nm (attributed to 2H11/24I15/2 and 4S3/24I15/2 transition of Er3+ ions respectively), red emission at about 659?nm and 694?nm (attributed to 4F9/24I15/2 transition of Er3+ ions and 3F33H6 transition of Tm3+ ions, respectively), which are not changed after the doping of Al3+ ions. However, the doping of Al3+ ions can enhance the up-conversion luminescent intensity and efficiency, while the emission color of as-prepared powder phosphors can be tunable by controlling the doping amount of Al3+ ions. Taking Zn(Al0.5Ga0.5)2O4:Yb,Tm,Er as the cut-off value, the emissions have clear blue-shift firstly and then show obvious red-shift with the increasing doping of Al3+ ions. Stated thus, pink emission in ZnAl2O4:Yb,Tm,Er, purplish pink emission in ZnGa2O4:Yb,Tm,Er and Zn(Al0.9Ga0.1)2O4:Yb,Tm,Er, purple emission in Zn(Al0.1Ga0.9)2O4:Yb,Tm,Er and Zn(Al0.3Ga0.7)2O4:Yb,Tm,Er, purplish blue emission in Zn(Al0.7Ga0.3)2O4:Yb,Tm,Er, blue emission in Zn(Al0.5Ga0.5)2O4:Yb,Tm,Er can be observed, which confirm the potential applications of as-prepared Zn(AlxGa1-x)2O4:Yb3+,Tm3+,Er3+ powder phosphors in luminous paint, infrared detection and so on.  相似文献   

5.
In this study, by a conventional melt quenching method, we synthesized novel up-conversion phosphors of 60TeO2–30TlO0.5–(9−x)ZnO–xTm2O3–1Yb2O3 (x = 0.1–0.5) glasses, whose system was recently developed in our collaborative group, and their blue up-conversion photoluminescence (UCPL) of Tm3+ ions via three-step energy transfer from near-infrared (NIR) sensitizer of Yb3+ ions was observed. In particular, the substantial rate of the energy transfer <γd5> in the third step from Yb3+ to Tm3+ under excitation at 975 nm, which determined the final blue UCPL intensity, was estimated as a function of the rare-earth concentration. With an aid of analytical methods of PL lifetime and Judd–Ofelt theory, it was revealed that the highest energy transfer rate <γd5> was achieved to be 2.07 × 10−17 cm3/s for x = 0.2, and further increasing Tm2O3 content x in the fixed Yb2O3 resulted in the decrease in the energy transfer rate <γd5>. One of the plausible causes was concentration quenching of Yb3+ ions. The other was back-transfer from Tm3+ to Yb3+ ions. The influence of the condition of glass synthesis and the melting time on <γd5> was also discussed.  相似文献   

6.
《Ceramics International》2022,48(10):14091-14097
Particle size is a critical parameter in up-conversion luminescence tuning and application research. In this study, CeO2:Yb3+/Er3+ nanospheres were synthesized via coprecipitation. The average size of these nanospheres gradually decreased as the Yb3+ doping concentration increased, which might be attributed to the influence of Yb3+ doping on the growth rate of nanospheres by surface charge repulsion. Upon exciting these nanospheres using a 980-nm laser, the corresponding up-conversion red-green emission intensity ratio gradually increased as the Yb3+ doping concentration increased, which might be ascribed to two reasons: the strengthened 4S3/2 → 4F9/2 nonradiative relaxation process and the enhanced Er3+ → Yb3+ energy back-transfer process. To assess the influence of the nonradiative relaxation process on the up-conversion emission red-green ratios, the down-conversion emission spectra and decay curves of CeO2:x%Yb3+/2%Er3+ nanospheres that were excited by a 520 nm laser were investigated. To validate how the particle size affects the up-conversion emission, CeO2:x%Lu3+/2%Yb3+/2%Er3+ nanospheres of various sizes were synthesized by substituting optically active Yb3+ using optically inert Lu3+. The corresponding up-conversion emission spectra and decay curves were investigated. The experimental results enhanced our understanding of how lanthanide doping affects the up-conversion luminescence tuning of Er3+, offering great potential to regulate the morphology and optical properties of the up-conversion luminescence nanoparticles.  相似文献   

7.
A series of Tm3+/Yb3+ codoped tellurite glasses, which demonstrate an interesting dual‐mode solar spectral converting for c‐Si solar cells, have been successfully prepared by conventional high‐temperature melt‐quenching technique. The photoluminescence (PL), photoluminescence excitation (PLE) spectra along with the decay curves have been studied systematically. The results indicate that the transparent glasses show two distinguishable near infrared (NIR) spectral converting behaviors, that is, quantum cutting (QC) and downshifting (DS) processes, sensitized by narrow f–f transition absorption of Tm3+:3H61G4 at 465 nm and broad absorption band due to charge‐transfer state (CTS) of Yb3+‐O2? at 320 nm, respectively. The Tm3+/Yb3+ codoped tellurite glasses convert ultraviolet (240–400 nm) and blue (450–490 nm) photons into NIR (920–1100 nm) ones, which well match the optimal spectral response of silicon (Si) solar cells. The prepared tellurite glass can be potentially utilized as spectral converter to improve the photovoltaic conversion of c‐Si solar cells. The dual‐mode solar spectrum converting material might explore a novel approach to realize UV‐Vis to NIR downconversion for Si solar cells application.  相似文献   

8.

Abstract

Powders of Y2O3 co-doped with Yb3+ and Er3+ composed of well-crystallized nanoparticles (30 to 50 nm in diameter) with no adsorbed ligand species on their surface are prepared by polymer complex solution method. These powders exhibit up-conversion emission upon 978-nm excitation with a color that can be tuned from green to red by changing the Yb3+/Er3+ concentration ratio. The mechanism underlying up-conversion color changes is presented along with material structural and optical properties.

PACS

42.70.-a, 78.55.Hx, 78.60.-b  相似文献   

9.
In the paper, the upconversion luminescence of 70GeO2–30[Ga2O3–BaO–Na2O] glass system co-doped with Yb3+/Tm3+ ions was investigated. Strong blue emission at 478 nm corresponding to the transition 1G4 → 3H6 in thulium ions was measured under the excitation of 976-nm diode laser. The dependence of the upconversion emission upon the thulium ion concentration was studied to determine the optimal conditions of energy transfer between energy levels of active dopants. The most effective energy transfer Yb3+ → Tm3+ was obtained in glass co-doped with molar ratio of dopant 0.7 Yb2O3/0.07 Tm2O3. The increase in thulium concentration more than 0.07 mol% results in the reverse energy transfer from Tm3+ → Yb3+, which leads to rapid quenching of the luminescence line at the wavelength 478 nm. In germanate glass co-doped with 0.7Yb2O3/0.07Tm2O3, the longest lifetime of 1G4 level equal 278 μs was achieved. The presented results indicate that elaborated germanate glass co-doped with Yb3+/Tm3+ ions is a promising material that can be used to produce fiber lasers and superluminescent fiber sources generating radiation in the visible spectrum.  相似文献   

10.
In order to increase of the photocurrent, photovoltage and energy conversion efficiency of dye-sensitized solar cell (DSSC), rare-earth doped oxide of Lu2O3:(Tm3+, Yb3+) is prepared and introduced into the TiO2 film in the DSSC. As a luminescence medium, Lu2O3:(Tm3+, Yb3+) improves incident light harvest via a conversion luminescence process and increases photocurrent; as a p-type dopant, the rare-earth ions elevate the energy level of the oxide film and increase the photovoltage. Under a simulated solar light irradiation of 100 mW cm−2, the light-to-electric energy conversion efficiency of the DSSC with Lu2O3:(Tm3+, Yb3+) doping reaches 6.63%, which is increased by 11.1% compared to the DSSC without Lu2O3:(Tm3+, Yb3+) doping.  相似文献   

11.
《Ceramics International》2020,46(3):3015-3022
Ho3+ and Yb3+ codoped bismuth titanate (BTO) composite powders with infrared to visible upconversion luminescence (UCL) function were prepared by SGC method. The effects of Ho3+ and Yb3+ doping content on the structure and property were investigated for BTO: xHo, 0.2 Yb (x = 0, 0.02, 0.04, 0.06, 0.08, 0.1) and BTO: 0.02Ho, yYb (y = 0.1, 0.2, 0.3, 0.5, 0.7, 0.9) samples. All the samples include three bismuth titanate phases (Bi4Ti3O12, Bi2Ti2O7, and Bi20TiO32), and the phase proportion can be tuned by changing Ho3+ and Yb3+ doping content. These powders are well crystalized with honeycomb-like microscopic structure, and with good absorption for 233 nm, 310 nm and 975 nm wavelength. The band gap can be tuned from 3.53 eV to 4.03 eV when increasing Yb3+ content from y = 0 to y = 0.9. A strong 530–580 nm green emission band and a relative weak 630–690 nm red one corresponding to Ho3+: 5S25I8 and 5F55I8 transitions appear in the UCL spectra for all the BTO: Ho, Yb samples when pumped at 980 nm. The emission intensities can well be tuned with various Ho3+ and Yb3+ content. The optimal UCL was obtained in BTO: 0.02Ho, 0.5 Yb for all the prepared samples. The energy transfer mechanism is analyzed by building a two-photon energy transfer model, which is proved by the relationship between emission intensities and pumping power measurement. The concentration quenching of Ho3+ is caused by cross relaxation of CR1 and CR2 (Ho: 5F4, 5S2 + 5I85I4 + 5I7) and by CR3 (Ho: 5F4, 5S2 + Yb: 2F7/2 → Ho: 5I6 + Yb: 2F5/2) for Yb3+ quenching. The mean luminescence lifetime (τm) from Ho: 5S2 decreases monotonously with the increase of Ho3+ and Yb3+ content.  相似文献   

12.
13.
The color‐tunable up‐conversion (UC) emission and infrared photoluminescence and dielectric relaxation of Er3+/Yb3+ co‐doped Bi2Ti2O7 pyrochlore thin films prepared by a chemical solution deposition method have been investigated. The pyrochlore phase structure of Bi2Ti2O7 can be stabilized by Er3+/Yb3+ co‐doping. Intense color‐tunable UC emission and infrared photoluminescence can be detected on the thin films excited by a 980 nm diode laser. Two UC emission bands centered at 548 and 660 nm in the spectra can be assigned to 2H11/2, 4S3/24I15/2 and 4F9/24I15/2 transitions of Er3+ ions, respectively. A Stokes infrared emission centered at 1530 nm is due to 4I13/24I15/2 transition of Er3+ ions. The dependence of UC emission intensity on pumping power indicates that the UC emission of the thin films is a two‐photon process. The thin films also exhibit a relatively high dielectric constant and a low dissipation factor as well as a good bias voltage stability. Temperature‐ and frequency‐dependent dielectric relaxation has been confirmed. This study suggests that Er3+/Yb3+ co‐doped Bi2Ti2O7 thin films can be applied to new multifunctional photoluminescence dielectric thin‐film devices.  相似文献   

14.
《Ceramics International》2022,48(16):22961-22966
Lanthanide-doped upconversion photoluminescent nanoparticles with unique anti-Stokes spectroscopic properties excel in many fields of application. Ytterbium-based self-sensitized fluorides with rich Yb3+ possess higher absorption efficiency of incident near infrared laser, and are more favorable for photoluminescence or optical heating applications. In this work, α-NaYbF4:Tm3+ crystalline nanoparticles are synthesized, which exhibit intense ultraviolet self-sensitized upconversion photoluminescence and highly efficient optical heating capability under 980 nm laser excitation. NaYbF4:Tm3+ nanocrystals emit multi-band luminescence with emission peaks located in the ultraviolet, blue and red spectral regions. The energy transfer mechanism and electronic transition pathways for the Upconversion luminescence are investigated based on the energy level scheme, and are further confirmed by luminescent dynamic analysis. Due to cross-relaxations between Tm3+ and energy back transfer from Tm3+ to Yb3+ processes, the NaYbF4: 1 mol% Tm3+ nanoparticles possess the highest luminescence intensity. The luminescent dynamic characteristics, such as decay time and rise time, vary with Tm3+ doping concentrations. Highly efficient optical heating effect is observed in the NaYbF4:Tm3+ nanoparticles with slope efficiency of photothermal conversion for 10 s laser irradiation is as high as 100.48 °C/W.  相似文献   

15.
Self-assembled three-dimensional Yb3+(Ln = Er, Ho, Tm) co-doped Gd2O3 up-converted (UC) phosphors were synthesized by a facile co-precipitation method, and their morphologies and microstructures were investigated by scanning electron microscope (SEM) and transmission electron microscope (TEM) analysis. Under the excitation at 980 nm, spectral pure three primary colors red, green and blue (RGB) emissions were respectively achieved in Yb3+/Er3+, Yb3+/Ho3+ and Yb3+/Tm3+ co-doped Gd2O3 phosphors, in which spectral color purities were tuned by adjusting the doping concentration, annealing temperature, excitation power density and the pulse-width of 980 nm laser. These results provide deeper insights into modulating spectral color purities of up-converted emission, and the potential applications of spectrally pure RGB up-converted materials in fingerprint recognition and multi-color printing were also investigated.  相似文献   

16.
《Ceramics International》2023,49(18):29682-29689
High-quality cubic YSZ crystals were designed with various contents of Er3+, Tm3+ and Yb3+ to produce white light emission, and grown by the optical floating zone method. The up-conversion luminescence spectra of the crystals under 980 nm laser irradiation show three distinct groups of emission peaks at ∼473 nm (blue) generated by the Tm3+ 1G43H6 transition, 531 and 547 nm (green) from the Er3+ 2H11/2 → 4I15/2 and 4S3/2 → 4I15/2 transitions, and 640 and 662 nm (red) from the Er3+ 4F9/2 → 4I15/2 transition. The optical power curve obtained by plotting the up-conversion luminescence intensity against the laser power shows that the blue emission involves a three-photon process, whilst both the green and red emissions are the results of two-photon processes. Overall white light emission was observed with the crystal prepared with 0.05 mol% Er2O3, 0.5 mol% Tm2O3 and 2.0 mol% Yb2O3, and this crystal is suitable for use in highly efficient white light emission devices.  相似文献   

17.
《Ceramics International》2017,43(14):10881-10888
A series of co-doped (Yb3+/Er3+): Li2O-LiF-B2O3-ZnO glasses were prepared by standard melt quenching technique. Structural and morphological studies were carried out by XRD and FESEM. Phonon energy dynamics have been clearly elucidated by Laser Raman analysis. The pertinent absorption bands were observed in optical absorption spectra of singly doped and co-doped Yb3+/Er3+: LBZ glasses. We have been observed a strong up-conversion red emission pertaining to Er3+ ions at 1.0 mol% under the excitation of 980 nm. However, the up-conversion and down conversion (1.53 µm) emission intensities were remarkably enhanced with the addition of Yb3+ ions to Er3+: LBZ glasses due to energy transfer from Yb3+ to Er3+. Up-conversion emission spectra of co-doped (Yb3+/Er3+): LBZ glasses exhibits three strong emissions at 480 nm, 541 nm and 610 nm which are assigned with corresponding electronic transitions of 2H9/24I15/2, 4S3/24I15/2 and 4F9/24I15/2 respectively. Consequently, the green to red ratio values (G/R) also supports the strong up-conversion emission. The Commission International de E′clairage coordinates and correlated color temperatures (CCT) were calculated from their up-conversion emission spectra of co-doped (Yb3+/Er3+): LBZ glasses. The obtained chromaticity coordinates for optimized glass (0.332, 0.337) with CCT value at 5520 K are very close to the standard white colorimetric point in cool white region. These results could be suggested that the obtained co-doped (Yb3+/Er3+): LBZ glasses are promising candidates for w-LEDs applications.  相似文献   

18.
Novel LaMgAl11O19:Tm3+, Dy3+ phosphors were prepared utilizing a high‐temperature solid‐state reaction method. The phase formation, luminescence properties, energy‐transfer mechanism from the Tm3+ to the Dy3+ ions, the thermal stability, and CIE coordinates were investigated. When excited at 359 nm, the LaMgAl11O19: xTm3+ phosphors exhibit strong blue emission bands at 455 nm. After codoping with Dy3+ and excitation at 359 nm, the LaMgAl11O19:0.03Tm3+, yDy3+ phosphors emitted white light consisting of the characteristic emission peaks of Tm3+ and Dy3+. The Dy3+ emission intensity increased with the Dy3+ concentration due to the energy transfer from Tm3+ to Dy3+, and concentration quenching due to the high Dy3+ doping concentration (= 0.1 mol) did not occur. The calculation of the CIE coordinates of the LaMgAl11O19:Tm3+, yDy3+ phosphors revealed the tunability of the emission color from blue to bluish‐white and to white by changing the excitation wavelength and the doping concentration. An energy transfer from Tm3+ to Dy3+ by dipole–dipole interaction was confirmed by the decay curve, lifetime, and energy‐transfer efficiency measurements. When excited at 359 nm, the LaMgAl11O19:Tm3+, Dy3+ phosphor also showed good thermal stability, suggesting that it can be used in white LEDs excited by a GaN‐based ultraviolet LED.  相似文献   

19.
《Ceramics International》2017,43(5):4330-4334
Yb2O3:Ho3+ nanocrystalline powders were synthesized through a solid state reaction method. X-ray diffraction analysis and field emission scanning electron microscopy were used to analyze the phase composition and morphology of the powders. Then under the 980 nm excitation of laser diode, the fluorescence of the crystals was studied via a fluorescence spectrometer. The green and red emissions centered on 551 and 668 nm were observed, and the green band dominated the emission spectrum. The effect of the concentration of Ho3+ on the upconversion luminescence intensity was discussed and the possible upconversion emission mechanism was explained. It indicates that like other metal oxide nanoparticles, Yb2O3 could also be a potential host material for doping to prepare the upconversion phosphor.  相似文献   

20.
The color-tunable up-conversion (UC) emission was observed in ZrO2:Yb3+, Er3+ thin films synthesized on fused silica substrates using a chemical solution deposition method. The crystal structure, surface morphology image and optical transmittance of ZrO2:Yb3+, Er3+ thin films were detected in the matter of Yb3+/Er3+ doping content. Under excitation by 980?nm infrared light, intense UC emission can be obtained from ZrO2:Yb3+, Er3+ thin films. Photoluminescence study shows that there are two emission bands centered at 548?nm and 660?nm in the UC luminescence spectra, which can be owing to (2H11/2,4S3/2)→4I15/2 and 4F9/24I15/2 transitions of Er3+ ions, respectively. In addition, the color coordinate of UC emission between green-red can be tuned by properly adjusting the dopant concentration, because the composition of Yb3+/Er3+ affect the red/green ratio via the process of cross relaxation and energy back transfer. Our study suggests that ZrO2:Yb3+, Er3+ thin films can be considered as promising materials for new photoluminescence devices.  相似文献   

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