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1.
Spectroscopic characterization of co-doped Tm,Ho:YVO4 crystal grown by the Czochralski method has been performed including absorption spectrum, emitting spectrum and luminescence decay lifetime. The polarization emitting spectrum around 2 μm is accomplished by exciting a singly Ho3+ doped YVO4 crystal to exclude the influence of Tm3+3F4-3H6 transition and the emission cross section is deduced from both Fuchtbauer-Ladenburg (F-L) equation and reciprocity method (RM). In addition, we report up to 10.4 W continuous wave (CW) output with a conversion efficiency of 40% and 10.3 W Q-Switch output with 12.5 kHz pulse repetition rate of diode-pumped cryogenic Tm,Ho:YVO4 laser. For Q-Switch operation, the minimum pulse width of 28.2 ns is obtained, all of which demonstrate that the Tm,Ho:YVO4 is excellent laser material for 2 μm radiation.  相似文献   

2.
A white-emitting Ca9Y(PO4)7: Tm3+, Dy3+ phosphor has been successfully prepared by conventional high-temperature solid-state reaction. X-ray diffraction (XRD) and fluorescence spectrophotometer were used to characterize the as-synthesized phosphors. The excitation and emission spectra show that all the Tm3+ and Dy3+ co-doped Ca9Y(PO4)7 samples can be effectively excited by UV light and then emit blue and yellow light simultaneously. Furthermore, the emission and color coordinate of as-obtained samples pumped by 365 nm are able to be adjusted around white light by varying the doping concentrations of Tm3+ and Dy3+. So, the as-fabricated single-composition Ca9Y(PO4)7: Tm3+, Dy3+ phosphor will have a promising application in the area of white light emitting diodes.  相似文献   

3.
《Optical Materials》2014,36(12):2138-2145
Dy3+ and Tm3+ co-doped YAl3(BO3)4 (YAB) phosphors were prepared by solid-state reaction method at 1200 °C/3 h. The average crystallite size was determined as 52.09 nm from the X-ray diffraction measurements. Upon 352 and 359 nm near ultra violet excitation, the YAB:Dy3+–Tm3+ phosphors exhibit Dy3+:4F9/2  6HJ (J = 15/2, 13/2, 11/2) and Tm3+:1D2  3F4 transitions with different luminescence intensity. The photoluminescence emission and decay measurements revealed the energy transfer from Dy3+ to Tm3+ ions under 359 nm excitation only. The energy transfer between Dy3+ and Tm3+ takes place in Dy3+–Tm3+ clusters through exchange interaction mechanism. The Commission International de I’Eclairage chromaticity coordinates of YAB:Tm3+ phosphor (λex = 359 nm) were found very close to the European Broadcasting Union and National Television Standard Committee illuminants. The emission color of the studied phosphors could be tuned from blue-to-white as a function of excitation wavelength. The YAB:Dy3+–Tm3+ phosphors can be used as potential candidates in display technology.  相似文献   

4.
Gd2O3 nanophosphors were prepared by combustion synthesis with and without doping of Dy3+ ions. The X-ray powder diffraction patterns indicate that as-prepared Gd2O3 and 0.1 mol% Dy2O3 doped Gd2O3 nanophosphors have monoclinic structures. The transmission electron microscope (TEM) studies revealed that the as-prepared phosphors had an average crystallite sizes around 37 nm. The excitation and emission properties have been investigated for Dy3+ doped and undoped Gd2O3 nanophosphors. New emission bands were observed in the visible region for Gd2O3 nanophosphors without any rare earth ion doping under different excitations. A tentative mechanism for the origin of luminescence from Gd2O3 host was discussed. Emission properties also measured for 0.1 mol% Dy3+ doped Gd2O3 nanophosphors and found the characteristic Dy3+ visible emissions at 489 and 580 nm due to 4F9/2 → 6H15/2 and 4F9/2 → 6H13/2 transitions, respectively. The chromaticity coordinates were calculated based on the emission spectra of Dy3+ doped and undoped Gd2O3 nanophosphors and analyzed with Commission Internationale de l'Eclairage (CIE) chromaticity diagram. These nanophosphors exhibit green color in undoped Gd2O3 and white color after adding 0.1 mol% Dy2O3 to Gd2O3 nanophosphors under UV excitation. These phosphors could be a promising phosphor for applications in flat panel displays.  相似文献   

5.
Triply-doped single crystals KGd(WO4)2:Er3+/Yb3+/Tm3+, KGd(WO4)2:Tb3+/Yb3+/Tm3+ and KGd(WO4)2:Pr3+/Yb3+/Tm3+ were grown by the Top Seeded Solution Growth (TSSG) method, with an aim of getting efficient up-converted multicolored luminescence, which subsequently can be used for generation of white light. Such an aim determined the choice of the triply doped compounds: excitation of the Yb3+ ions in the infrared spectral region is followed by red, green and blue emission from other dopants. It was shown that all these systems exhibit multicolor up-conversion fluorescence under 980 nm laser irradiation. Detailed spectroscopic studies of their absorption and luminescence spectra were performed. From the analysis of the dependence of the intensity of fluorescence on the excitation power the conclusion was made about significant role played by the host’s conduction band and other possible defects of the KGd(WO4)2 crystal lattice in the up-conversion processes.  相似文献   

6.
Trivalent dysprosium (Dy3+) activated magnesium alluminate phosphors were synthesized by high temperature solid state reaction method. X-ray diffraction (XRD), field emission scanning electron microscopy (FESEM), Fourier transform infrared spectroscopy (FT-IR), photoluminescence (PL) spectra as well as lifetimes were used to characterize the resulting phosphors. The results show that the obtained MgAl2O4:Dy3+ phosphors have good crystallinity, spherical morphology with sizes ranged from 120 to 140 nm and strong blue emission under an excitation of 258 nm. The emission spectrum of this phosphor consists of two emission bands: blue band and yellow band, and the emission intensity of the former is stronger than that of the later. Luminescence quenching is explained and the corresponding luminescence mechanisms have been proposed.  相似文献   

7.
Novel LaPO4:Dy3+ white light phosphors with monoclinic system were successfully synthesized by hydrothermal method at 240 °C. The strong absorption at around 147 nm in excitation spectrum was assigned to the host absorption which suggested that the vacuum ultraviolet-excited energy was efficiently transferred from the host to the Dy3+ ion. The f-d transition of Dy3+ ion was observed locating at 182 nm. Under 147 nm excitation, La1−xPO4:xDy3+ phosphor exhibited two emission bands locating at 571 nm (yellow) and 478 nm (blue) which corresponded to the hypersensitive transitions 4F9/2-6H13/2 and 4F9/2-6H15/2. It was the two emission bands that lead to the white light.  相似文献   

8.
Novel LiSrPO4:Dy3+ phosphors for white light-emitting diodes (w-LEDs) were synthesized by the conventional solid-state reaction. X-ray powder diffraction (XRD) analysis confirmed the phase formation of LiSrPO4:Dy3+ materials. Luminescence properties results showed that the phosphor could be efficiently excited by the UV–vis light region from 250 to 460 nm, and it exhibited blue (483 nm) and yellow (574 nm) emission corresponding to 4F9/26H15/2 transitions and 4F9/26H13/2 transitions, respectively. The luminescence intensity of LiSrPO4:xDy3+ phosphor firstly increased and then decreased with increasing Dy3+ concentration, and reached the maximum at x = 0.03. It was found that concentration quenching occurred as a result of dipole-dipole interaction according to the Dexter's theory. The decay time was also determined for various concentrations of Dy3+ in LiSrPO4.  相似文献   

9.
YVO4:Er3+ phosphors were prepared by solid state reaction method. The X-ray diffraction results testify the pure tetragonal YVO4 crystalline phase. The emission spectra of the samples show the obvious intrinsic luminescence of the hosts even though the concentration of the dopants has reached nominal 6 mol%, which is unusual since it is believed that the energy transferring from VO43− to rare-earth ions occurs efficiently, thus the intrinsic luminescence of the host disappears when the concentration of the dopants is higher than ∼1 mol%. The comparison of the photoluminescence excited at 320 nm (the absorption of vanadate host) and 380, 490, 525 or 532 nm (the absorption of erbium ions) in visible and infrared range has revealed that energy transfer process has occurred in the system. The study of decay times has revealed that the energy transfer efficiency of the doped YVO4:Er samples is very low. The low efficiency might be one important reason for the unusual intrinsic emission of the host.  相似文献   

10.
Novel red phosphors Na2CaSiO4:xEu3+ were synthesized using high temperature solid-state reaction and their luminescence characteristics were investigated for the first time. The excitation spectra indicate that the Na2CaSiO4:xEu3+ phosphors can be effectively excited by ultraviolet (393 nm) light. The emission spectra of Na2CaSiO4:xEu3+ phosphors invariably exhibit four peaks assigned to the 5D0-7FJ (J = 1, 2, 3 and 4) transitions of Eu3+ under 393 nm excitation. The Commission Internationale de l’Eclairage (CIE) chromaticity coordinates and quantum efficiency (QE) are (0.66, 0.34) and 58.9%, respectively. The good color saturation and high quantum efficiency indicate that Na2CaSiO4:Eu3+ phosphors are potential candidate for light-emitting diodes.  相似文献   

11.
A series of yellow-emitting phosphors based on a silicate host matrix, Ca3 − xSi2O7: xEu2+, was prepared by solid-state reaction method. The structure and photoluminescent properties of the phosphors were investigated. The XRD results show that the Eu2+ substitution of Ca2+ does not change the structure of Ca3Si2O7 host and there is no impurity phase for x < 0.12. The SEM images display that phosphors aggregate obviously and the shape of the phosphor particle is irregular. The EDX results reveal that the phosphors consist of Ca, Si, O, Eu and the concentration of these elements is close to the stoichiometric composition. The Ca3 − xSi2O7: xEu2+ phosphors can be excited at a wavelength of 300-490 nm, which is suitable for the emission band of near ultraviolet or blue light-emitting-diode (LED) chips. The phosphors exhibit a broad emission region from 520 to 650 nm and the emission peak centered at 568 nm. In addition, the shape and the position of the emission peak are not influenced by the Eu2+ concentration and excitation wavelength. The phosphor for x = 0.045 has the strongest excitation and emission intensity, and the Ca3 − xSi2O7: xEu2+ phosphors can be used as candidates for the white LEDs.  相似文献   

12.
A spectroscopic study based on photoluminescence spectra and decay time profiles in Tm3+ and Tm3+/Dy3+ doped Zn(PO3)2 glasses is reported. The Tm3+ doped Zn(PO3)2 glass, upon 357 nm excitation, exhibits blue emission with CIE1931 chromaticity coordinates, x = 0.157 and y = 0.030, and color purity of about 96%. Under excitations at 348, 352 and 363 nm, which match with the emissions of AlGaN and GaN based LEDs, the Tm3+/Dy3+ co-doped Zn(PO3)2 glass displays natural white, bluish white and cool white overall emissions, with correlated color temperature values of 4523, 10700 and 7788 K, respectively, depending strongly on the excitation wavelength. The shortening of the Dy3+ emission decay time in presence of Tm3+ suggests that Dy3+→Tm3+ non-radiative energy transfer occurs. By using the Inokuti-Hirayama model, it is inferred that an electric quadrupole-quadrupole interaction might be the dominant mechanism involved in the energy transfer. The efficiency and probability of this energy transfer are 0.12 and 126.70 s−1, respectively.  相似文献   

13.
The highly efficient red phosphors (Ca1−xSrx)(S1−ySey):Eu2+,M3+ (M = Sc and Y) were prepared, starting from CaCO3, SrCO3, Eu2O3, Sc2O3, Y2O3, S, and SeO2 with a flux, by a conventional solid-state reaction. The optimized red phosphors converted 11.8% (Sc3+) and 11.7% (Y3+) of the absorbed blue light into luminescence. These quantum values are much higher than Q = 3.0% of CaS:Eu2+. For the fabrication of light-emitting diodes (LEDs), the prepared phosphors were coated with MgO from non-aqueous solution to overcome their weakness against moisture. White LEDs were fabricated by pasting the prepared red phosphors and the yellow YAG:Ce3+ phosphor on an InGaN blue chip (λems = 446.5 nm). The incorporation of the red phosphor to the YAG:Ce3+ phosphor resulted in an improved color rendering index (Ra) from 70 to 80.  相似文献   

14.
Bright white upconversion luminescence from Er3+-Tm3+-Yb3+ doped CaSnO3 powders is obtained under the diode laser excitation of 980 nm. It is composed of three primary colors of red, green and blue emissions, which originate from the transitions of 4F9/2 → 4I15/2, (2H11/2, 4S3/2) → 4I15/2 of Er3+ ions and 1G4 → 3H6 of Tm3+ ions, respectively. The efficient upconversion emission is attributed to the energy transfer between Yb3+ and Er3+ or Tm3+ions. Moreover, it is observed that Tm3+ acts as the quenching center for the green upconversion luminescence from Er3+ ions, and the sensitizer for the red and blue luminescence when the Tm3+ doping content is less than 0.3 mol%. This is interpreted in terms of the efficient energy transfer between Tm3+ and Er3+ ions. The calculated color coordinates fall within the white region in the standard 1931 CIE chromaticity diagram, indicating the potential applications of Er3+-Tm3+-Yb3+ doped CaSnO3 in the field of displaying and lasers, etc.  相似文献   

15.
A series of single-phase full color phosphors, Dy3+-doped Li2SrSiO4 was synthesized by a solid-state reaction method. The phase of the as-prepared powders was measured by X-ray diffraction pattern (XRD) and the chemical composition was characterized using energy dispersive spectroscopy (EDS). The luminescent properties of Li2SrSiO4:Dy3+ were systematically investigated by concentration quenching, decay behavior and thermal stability measurements. The results suggested that the emission intensity of the Li2SrSiO4:Dy3+ was much stronger than that of Li2SrSiO4:Eu2+. It was worth to mention that Li2SrSiO4:Dy3+ phosphor possessed excellent thermal stability for use in light-emitting diodes (LEDs) and the emission intensity measured at 300 °C was only decreased 8% comparing with that measured at room temperature. Furthermore, the Commission International del’Eclairage (CIE) chromaticity coordinates of Li2SrSiO4:Dy3+ moved toward the ideal white light coordinates (0.33, 0.33). All results demonstrated that Li2SrSiO4:Dy3+ might be a potential phosphor for NUV-based white light-emitting diodes.  相似文献   

16.
Y0.99VO4:0.01Dy3+, Y0.99PO4:0.01Dy3+ and YxVO4:0.01Dy3+ phosphors were synthesized by chemical co-precipitation method. All the samples were characterized by X-ray powder diffraction (XRD) and photoluminescence spectroscopy. XRD results show that the samples only have single tetragonal structure and the crystallinity of Y0.99VO4:0.01Dy3+ phosphor is higher than that of Y0.99PO4:0.01Dy3+ phosphor when the heat treatment process is same. Photoluminescence excitation spectra results show that the Y0.99VO4:0.01Dy3+ and Y0.99PO4:0.01Dy3+ phosphors can be efficiently excited by ultraviolet light from 250 nm to 380 nm, the former have a wide Dy3+–O2? charge transfer band ranging from 260 nm to 350 nm including a peak at 310 nm, the latter have four peaks at 294 nm, 326 nm, 352 nm and 365 nm. Emission spectra of all the samples exhibit a strong blue emission (483 nm) and another strong yellow emission (574 nm). Moreover, the yellow-to-blue emission intensity ratio and color temperature of emission of Dy3+ are strongly related to excitation wavelength in Y0.99PO4:0.01Dy3+ phosphor, but it is almost not in Y0.99VO4:0.01Dy3+ phosphor. For YxVO4:0.01Dy3+ (x = 0.94, 0.97, 0.99, 1.01, 1.03) phosphors, with increasing value of x, the body color of phosphor changes from yellow to white and the strongest peak in excitation spectra shifts a little to shorter wavelength. It is detrimental to luminous intensity when Y3+ content deviate stoichiometric ratio, but the influence of Y3+ on the color temperature of emission of YVO4:Dy3+ phosphor is slight.  相似文献   

17.
Yb3+/Tm3+/Ho3+ tri-doped Gd2Mo3O9 phosphors were synthesized by the high-temperature solid-state method. Under 980 nm near-infrared excitation, the white-light emission can be observed, which is consists of the blue, green, and red UC emissions. The green and red emission at 547 nm and 660 nm originated from the transition of Ho3+ (5S2, 5F4 → 5I8 and 5F5 → 5I8) and the blue emission at 475 nm attributed to the transition of Tm3+ (5G4 → 5H6). In this experiment, we selected the optimum concentration ratio of the three rare earths for the bright white emission. The Commission internationale de L’Eclairage (CIE) coordinates for the samples were calculated, and chromaticity coordinates were very close to white light regions. We find that the calculated CIE color coordinates of the Yb3+/Tm3+/Ho3+ tri-doped Gd2Mo3O9 phosphors changed with the incident pump power from 400 mW/cm2 to 1000 mW/cm2. The upconversion luminescence mechanism of the samples was discussed on its spectral. The white light may be proved to be a candidate material for applications in various fields.  相似文献   

18.
Shuxia Zhang 《Materials Letters》2009,63(21):1820-1822
Rare-earth ion Dy was substituted at the bismuth site in BiFeO3 to produce Bi1 − xDyxFeO3 (x = 0, 0.1, 0.2 and 0.3) polycrystalline ceramics. A two-stage solid-state reaction method was adopted in synthesizing the materials. The effects of varying the Dy doping concentration on the crystalline structures, morphologies and magnetic properties of the final products have been investigated. It is found that Dy doping resulted in a sequence of structural phase transitions and led to small grain sizes in the materials. As a result, the magnetic property of the doped samples was much enhanced. Therefore, it seems a promising way to improve the weak ferromagnetic property of BiFeO3 based materials by Dy doping.  相似文献   

19.
In order to search efficient red-emitting phosphors for white LEDs application, CaAl12O19:Mn4+ phosphors have been prepared by a combustion method assisted with GeO2 flux. The influence of GeO2 concentration and annealing temperature on the structure and luminescence intensity for the phosphors has been investigated. The mechanism for luminescence enhancement has been discussed. At GeO2 doping concentration of 1.5 mol%, the red emission intensity increases by 81% under 330 nm UVA excitation. More isolated luminescence center Mn4+ ions rather than pairs of Mn4+-Mn2+ ions are formed in the lattice with the introduction of GeO2 at high temperature oxidation, leading to the enhancement of the red emission. A feasible new way to enhance the red emission in CaAl12O19:Mn4+ phosphor is obtained.  相似文献   

20.
A borate compound was adopted as a new host material of Eu3+ and Tb3+ activators to fabricate efficient luminescence materials. The phosphor compositions, Gd1−xEuxCa3(GaO)3(BO3)4 and Gd1−xTbxCa3(GaO)3(BO3)4, were synthesized by conventional solid-state reactions. The crystalline phases of the resulting powders were identified using an X-ray diffraction system. Their photoluminescence properties were investigated under long-wavelength UV excitation. The Eu3+-doped and Tb3+-doped GdCa3(GaO)3(BO3)4 phosphors efficiently emitted red and green light, respectively. The temperature dependency of emission intensity was measured in a range from room temperature to 150 °C. The emission intensities of the red and green phosphors at 150 °C are 87% and 91% of those at room temperature, respectively. In addition, the decay times of both the red and green phosphors are shorter than 3 ms.  相似文献   

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