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1.
Sr2+ doped BaAl2Si2O8:Eu2+ phosphor was synthesized by chemical co-precipitation method. With the increase of Sr2+ concentration, the phase structure of (Ba0.965 ? xSrxEu0.035)Al2Si2O8 changes from hexagonal phase to monoclinic phase owing to large activation energy in SrAl2Si2O8 system. (Ba0.965 ? xSrxEu0.035)Al2Si2O8 phosphor exhibits a broad blue band peaking at 425 nm due to the 4f65d–4f7(8S7/2) transition of Eu2+ ions. The emission intensity increases, accompanied by the blue shift of emission maximum from 459 to 417 nm with the Sr2+ doping concentration increasing. The optimal concentration of Sr2+ ion is 40%, and the phosphor shows high color stability in CIE chromaticity diagram. The result indicates that Sr2+ doped phosphor not only can enhance the relative intensity but also can adjust the chromaticity coordinate.  相似文献   

2.
The Sr1.56Ba0.4SiO4:0.04Eu2+ phosphors were prepared via a combustion reaction and following the calcination method at low temperature. The influences of the amount of the uncommonly used SrCl2 flux, different calcination temperatures and time on the structure and the photoluminescence (PL) properties of the phosphors were investigated. Under the excitation of 450 nm blue light, the phosphor shows the intense broad emission band from 490 nm to 650 nm, and the emission peak is centered at 553 nm. The luminescence intensity of Sr1.56Ba0.4SiO4:0.04Eu2+ was very sensitive to the crystallinity and morphology characteristics of the phosphor. The phosphor calcined at 950 °C for 3 h in 20%H2/80%Ar atmosphere exhibits improved PL properties due to its high crystallinity and excellent morphology characteristics. The use of the SrCl2 flux provides a novel way to improve the crystallinity of the silicates phosphors at low preparation temperature.  相似文献   

3.
《Current Applied Physics》2010,10(2):596-600
The spectroscopic and host phase properties of SrAl2O4:Eu2+, Dy3+ phosphors with a series of different initiating combustion temperature, urea concentration as a fuel and critical pH of precursor solution are investigated. The SrAl2O4:Eu2+, Dy3+ nanoparticle pigments were obtained by exothermic combustion process within less than 5 min. The sample that ignited at initiating combustion temperature of 600 °C exhibits highest intensity emission peak at 517 nm in which the SrAl2O4 host phase has the maximum fraction of monoclinic SrAl2O4 phase. The excitation spectra consist of 240 and 254 nm broad peaks. The experimental results show that the optimum ratio of urea is 2.5 times higher than theoretical quantities for best emission condition of SrAl2O4:Eu2+, Dy3+ phosphor particles. The critical pH was obtained about 5.2. The crystallite size of these pigments is about 40 nm before thermal treatment and 62 nm after thermal treatment, respectively.  相似文献   

4.
A series of orange reddish emitting phosphors Eu3+-doped Sr3Bi(PO4)3 have been successfully synthesized by conventional solid-state reaction, and its photoluminescence (PL) properties have been investigated. The excitation spectra reveal strong excitation bands at 392 nm, which match well with the popular emissions from near-UV light-emitting diode chips. The emission spectra of Sr3Bi(PO4)3:Eu3+ phosphors invariably exhibit five peaks assigned to the 5D07FJ (J=0, 1, 2, 3, 4) transitions of Eu3+ and have dominating emission peak at 612 nm under 392 nm excitation. The luminescence intensity was enhanced with increasing Eu3+ content and the emission reached the maximum intensity at x=0.05 in Sr3Bi(PO4)3:xEu3+. The energy transfer behavior in the phosphors was discussed. The Commission Internationale de lEclairage (CIE) chromaticity coordinates, the quantum efficiencies, and the decay curves of the entitled phosphors excited under 392 nm are also investigated. The experimental results indicate that the Eu3+-doped Sr3Bi(PO4)3 phosphors are promising orange reddish-emitting phosphors pumped by near-UV light.  相似文献   

5.
Divalent europium-activated chlorosilicate Ca6Sr4(Si2O7)3Cl2:Eu2+ phosphors were synthesized by a conventional solid-state reaction under reductive atmosphere. These phosphors can be efficiently excited by UV–visible light from 320 to 420 nm, which matches that of a near UV-emitting InGaN chip. Under the 360 nm excitation, Ca6Sr3.97(Si2O7)3Cl2:0.03Eu2+ phosphor shows a strong and broad emission centering at 515 nm, which is attributed to the 5d→4f transition of Eu2+ ion. The mechanism of concentration quenching was determined to be the dipole–dipole interaction and the critical energy-transfer distance of Eu2+ was calculated as 3.31 nm. The CIE chromaticity coordinates of Ca6Sr3.96(Si2O7)3Cl2:0.03Eu2+ phosphor are (0.127, 0.770) according to the emission spectrum. It can be expected that Ca6Sr4(Si2O7)3Cl2:Eu2+ phosphor is a promising candidate as the green component for near-ultraviolet InGaN-based white LED.  相似文献   

6.
The Dy3+ and Eu3+ activated K3Al2 (PO4)3 phosphors were prepared by a combustion synthesis. From a powder X-ray diffraction (XRD) analysis the formation of K3Al2 (PO4)3 was confirmed. In the photoluminescence emission spectra, the K3Al2(PO4)3:Dy3+ phosphor emits two distinctive colors: blue and yellow whereas K3Al2(PO4)3:Eu3+ emits red color. Thus the combination of colors gives BYR (blue–yellow–red) emissions can produce white light. These phosphors exhibit a strong absorption between 340 and 400 nm which suggest that present phosphor is a promising candidate for producing white light-emitting diodes (LED).  相似文献   

7.
V.B. Pawade  S.J. Dhoble 《Optik》2012,123(20):1879-1883
Here we reported photoluminescence properties of Eu2+ activated in novel and existing MgXAl10O17 (X = Sr, Ca) phosphor which has been prepared by combustion synthesis at 550 °C under UV and near UV excitation wavelength. The PL emission properties of MgSrAl10O17:Eu2+ were monitored at 254 nm and 354 nm respectively keeping emission wavelength at 469 nm. Whereas novel MgCaAl10O17:Eu2+ exhibit emission band at 452 nm keeping excitation at 378 nm. These blue emission corresponds to 4f65d1  4f7 transition of Eu2+ ions. Further phosphor was analyzed by XRD for the confirmation of desired phase and purity.  相似文献   

8.
Dy3+-doped monoclinic NaYFPO4 phosphor has been synthesized by solid-state reaction technique. Its photoluminescence in the vacuum ultraviolet (VUV)-visible region was investigated. The most intensity broadband emission centered at about 171 nm was the host-related absorption. Another broadband at 153 nm could be related to the O2→Dy3+ charge transfer band (CTB) absorption. The excitation peaks located at 178 nm and 256 nm were the spin-allowed (SA) and spin-forbidden (SF) fd transitions of Dy3+, respectively. Some sharp lines in the range of 280–500 nm were due to the ff transitions of Dy3+ within its 4f9 configuration. Under the VUV–vis excitation, the Dy3+-doped NaYFPO4 phosphor showed the characteristic emissions of Dy3+ (4F9/26H15/2 transitions and 4F9/26H13/2 transitions) with a stronger blue emission peaking at about 485 nm. All the chromaticity coordinates of the sample were in the near cold-white region. It can be predicted that this phosphor can be applied in both mercury-free luminescence lamps and white LED.  相似文献   

9.
The red-emitting phosphor In2(MoO4)3:Eu3+ with cubic crystal structure was synthesized by a conventional solid-state reaction technique and its photoluminescence properties were investigated. The prepared phosphor can be efficiently excited by ultraviolet (395 nm) and blue (466 nm) light. The emission spectra of the phosphor manifest intensive red-emitting lines at 612 nm due to the electric dipole 5D07F2 transitions of Eu3+. The chromaticity coordinates of x=0.63, y=0.35 (λex=395 nm) and x=0.60, y=0.38 (λex=466 nm) are close to the standard of National Television Standard Committee values (NTSC) values. The concentration quenching of In2(MoO4)3:Eu3+ is 40 mol% and the concentration self-quenching mechanism under 466 nm excitation was the dd intereaction. As a result of the strong emission intensity and good excitation, the phosphor In2(MoO4)3:Eu3+ is regarded as a promising red-emitting conversion material for white LEDs.  相似文献   

10.
The Sr2MgSi2O7:Eu2+,Dy3+ materials were prepared with a solid state reaction and their microscopic structure (at 295 K only) and luminescence were studied at selected temperatures between 150 and 295 K. Undisturbed Sr crystal planes were common in the TEM images of the undoped Sr2MgSi2O7 material, whereas with Eu2+ doping more disturbed planes were observed even in the nanometer scale. With Dy3+ co-doping, a large number of small lattice domains created by the discontinuities in the crystal structure was observed. The domains with different orientations seem to be centered around point defects. The decay curves of Sr2MgSi2O7:Eu2+,Dy3+ showed fast (ms scale) persistent luminescence. The intensity of persistent luminescence increased considerably between 200 and 250 K while remaining constant in the ranges of 150–200 and 250–295 K. The changes were used to study the depth of the traps. In general, Dy3+ co-doping was found to deepen the traps.  相似文献   

11.
In this paper we report the combustion synthesis of rare earth (RE=Eu, Dy) doped Ba4Al2O7 phosphors. Prepared phosphors were characterized by X-ray powder diffraction (XRD), scanning electron microscope (SEM), Fourier transform infrared spectroscopy (FTIR), CIE color co-ordinates and their photoluminescence (PL) properties were also investigated. In case of Ba4Al2O7: Eu2+, the emission spectra show unique band centered at 495 nm, which corresponds to the 4f65d1→4f7 transition of Eu2+, and PL emission spectra of Dy3+ ion under 348 nm excitation give two bands centered at 478 nm (blue) and 575 nm (yellow), which originate from the transitions of 4F9/26H15/2 and 4F9/26H13/2 of Dy3+, respectively. The results indicate that the Eu2+ and Dy3+ activated Ba4Al2O7 phosphor could find application in solid state lighting.  相似文献   

12.
A blue-emitting phosphor, Eu2+-activated Mg3Ca3(PO4)4 phosphor was synthesized by conventional solid-state reaction. X-ray powder diffraction (XRD) analysis confirmed the phase formation. Photoluminescence (PL) results showed that Mg3Ca3(PO4)4: Eu2+ could be efficiently excited by UV–visible light from 250 to 430 nm, which matched well with the emission wavelengths of near-UV and UV LED chips. The effects of the doped-Eu2+ concentration in Mg3Ca3(PO4)4: Eu2+ on the PL were also investigated. The result reveals that Mg3Ca3(PO4)4: Eu2+ is a potential blue-emitting phosphor for white LEDs.  相似文献   

13.
A thiogallate chalcogenide phosphor CaLaGa3S7:Eu2+ was synthesized by a solid-state reaction at 950 °C in a H2S atmosphere. The photoluminescence excitation,emission spectra, concentration quenching, fluorescence lifetime, and thermal quenching process of the phosphor were investigated in detail. It was found that the synthesized phosphor emitted intense and broadband yellowish-green light with a peak at 554 nm. Thus, the proposed phosphor is suitable for the development of blue or near UV LED. The critical dopant concentration of Eu2+ (Rc=15 Å) per unit formula was found to be 0.15 mol. At room temperature, the fluorescence lifetime of Eu2+ in CaLaGa3S7 was found to be 0.216 μs. The activation energy for thermal quenching was 0.29 eV. The chromaticity coordinates of our phosphor is very close in color to Y3Al5O12:Ce3+. Therefore, CaLaGa3S7:Eu2+ can be a good alternative as a yellowish-green phosphor and can be used for white light generation in phosphor-converted LEDs.  相似文献   

14.
A Eu3+, Tb3+ codoped amorphous calcium silicate phosphor was prepared by heating a Eu3+, Tb3+ codoped calcium silicate hydrate phosphor formed by liquid-phase reaction for 30 min at 900 °C. The excitation peak wavelength of the resulting phosphor was 379 nm and the emission peak wavelengths were at 542 nm, attributed to the 5D47F5 transition of Tb3+, and at 613 mm, attributed to the 5D07F1 transition of Eu3+. The intensity ratio of the two peaks could be freely controlled by varying the Eu/Tb atomic ratio of the Eu3+, Tb3+ codoped amorphous calcium silicate phosphor, allowing light to be emitted over a wide range from green to red. It was clarified that electron transfer from Tb3+ to Eu3+ is occurring.  相似文献   

15.
A novel Sr2SiO4:Eu (1–5 mol %) superstructures (SS) were synthesized using bio-sacrificial A.V. gel assisted ultrasound method. Powder X-ray diffraction patterns confirmed the presence of both α and β phase formation. It was evident that the morphological growth was highly reliant on A.V. gel concentration, sonication time, pH and sonication power. The formation mechanisms for different hierarchical SS were proposed. From diffuse reflectance spectra, the energy band gap was estimated and found to be ∼4.70–5.11 eV. The photoluminescence emission spectra for the excitation at 392 nm, shows characteristic emission peaks at 593, 613, 654 and 702 nm which were attributed to 5D0  7F0, 7F1, 7F2 and 7F3 transitions of Eu3+ ions respectively. Conversely, when the samples were subjected to the heat treatment at 850 °C for 3 h under argon atmosphere, display an intense broad emission peak with two de-convoluted peaks at 490 and 550 nm due to 4f65d1→4f1 (8S7/2) transitions of Eu2+ ions. The concentration quenching phenomenon was discussed which attributes to energy transfer, electron–phonon coupling and ion–ion interaction. The Judd–Ofelt intensity parameters and other radiative properties were estimated by using emission spectra. The CIE chromaticity coordinate values of Sr2SiO4:Eu2+ and Eu3+ nanophosphors were located in green and red regions respectively. The calculated CCT and CRI values specify that the present phosphor can be fairly useful for both green and red components of white LED’s. Luminescence decay and quantum yield suggest the suitability of this phosphor as an efficient luminescent medium for light emitting diodes. Overall, the results elucidated a rapid, environmentally benign, cost-effective and convenient method for Sr2SiO4:Eu3+ synthesis and for the possible applications such as solid state lighting and display devices.  相似文献   

16.
The new apatite–silicate phosphor doped with Eu ions in Ba10(PO4)4(SiO4)2 matrix was synthesized through solid-state reaction. It was found that the as-synthesized phosphor displayed apparent mixture of band and line emission peaks giving rise to pseudo white light. The narrow emission bands peaking at 410 nm can be assigned to the 4f65d→4f7(8S7/2) transition of Eu2+ ions, and the other band at 507 nm is ascribed to anomalous fluorescent emission. One group of line emission peaking at 595 nm and 613 m were due to the 5D07F1 and 5D07F2 transition of Eu3+ ions. The occurrence of photostimulated luminescence and discrete emission lines in violet (410 nm), green (507 nm) and red (595 nm and 613 nm) colors indicate that this material has potential application in fields of white-light-emitting.  相似文献   

17.
Eu2+–Mn2+ codoped Ca-α-SiAlON phosphors, Ca0.736?ySi9.6Al2.4O0.8N15.2:0.064 Eu2+, yMn2+, were firstly synthesized by the high temperature solid state reaction method. The effects of doped Eu2+ and Eu2+–Mn2+ concentrations on the photoluminescence properties of the as-prepared phosphors were investigated systematically. Powder X-ray diffraction shows that pure Ca-α-SiAlON phase is synthesized after sintering at 1700 °C for 2 h under 0.5 MPa N2 atmosphere. The excitation spectra of Eu2+-doped Ca-α-SiAlON phosphors are characterized by two dominant bands centered at 286 nm and 395 nm, respectively. The photoluminescent spectrum of Eu2+-doped Ca-α-SiAlON phosphor exhibits an intense emission band centered at 580 nm due to the allowed 4f 65d→4f 7 transition of Eu2+, showing that the phosphor is a good candidate for creating white light when coupled to a blue LED chip. The intensities of both excitation and emission spectra monotonously decrease with the increment of codoped Mn2+ content (i.e. y value), indicating that energy transfer between Eu2+ and Mn2+ is inefficient in the case of Eu2+–Mn2+ codoped Ca-α-SiAlON phosphors.  相似文献   

18.
《Journal of luminescence》2003,65(2-4):127-133
BaMgAl10O17:Eu2+ (BAM) blue phosphor particles with improved photoluminescence (PL) intensity under vacuum ultraviolet (VUV) excitation were prepared by a spray pyrolysis process. In order to improve the PL intensity, Er3+ and Nd3+ ions were used as co-doping elements. The VUV characteristics of BAM:Eu2+, M+ (M=Er, Nd) were monitored with varying the Er3+ and Nd3+ content in order to find the optimal co-doping concentration when they were prepared by spray pyrolysis. It was found that doping Er3+ or Nd3+ enhances the PL intensity of BAM:Eu2+ blue phosphor particles. In particular, the M3+ doping effect on the PL intensity was pronounced when the prepared BAM:Eu2+, M3+ particles were excited by 172 nm VUV. The maximum intensity was obtained when the M3+ content was 1.0 at% with respect to Ba element. The PL intensity of BAM:Eu2+, M+ (M=Er3+, Nd3+) particles was also further improved by producing them in a spherical shape, which was successfully achieved by controlling the spray solution. The optimized BAM:Eu2+, M+ particles had about 10% higher PL intensity than that of the commercial particles, which are made by a conventional solid-state reaction.  相似文献   

19.
An Eu2+-activated oxynitride LiSr(4?y)B3O(9?3x/2)Nx:yEu2+ red-emitting phosphor was synthesized by solid-state reactions. The synthesized phosphor crystallized in a cubic system with space group Ia–3d. The LiSr4B3O(9?3x/2)Nx:Eu2+ phosphors exhibited a broad red emission band with a peak at 610 nm and a full width at half maximum of 106 nm under 410 nm excitation, which is ascribed to the 4f65d1→4f7 transition of Eu2+. The optimal doped nitrogen concentration was observed to be x=0.75. The average decay times of two different emission centers were estimated to be 568 and 489 ns in the LiSr3.99B3O8.25N0.5:0.01Eu2+ phosphors, respectively. Concentration quenching of Eu2+ ions occurred at y=0.07, and the critical distance was determined as 17.86 Å. The non-radiative transitions via dipole–dipole interactions resulted in the concentration quenching of Eu2+-site emission centers in the LiSr4B3O9 host. These results indicate LiSr4B3O(9?3x/2)Nx:Eu2+ phosphor is promising for application in white near-UV LEDs.  相似文献   

20.
A novel red phosphor La2MgTiO6:xEu3+ was successfully synthesized by the conventional solid state method. Excited by ultraviolet (395 nm) and blue (465 nm) light, La2MgTiO6:xEu3+ exhibits intense red emission. Due to the lack of inversion symmetry at the doping sites, the dominant emission peak is from the transition 5D07F2. Non-radiative transitions were demonstrated to be from dipole–dipole interactions and the critical distance was estimated to be ~9.19 Å. When Eu3+ ions' concentration reaches 15%, the emission intensity is about three times higher than that of the conventional phosphor Y2O3:Eu3+. The Commission International de L'Eclairage chromaticity coordinate was calculated to be x=0.657 and y=0.343. All the results indicate that La2MgTiO6:xEu3+ has superior luminescence properties.  相似文献   

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