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1.
New Ce3+ and/or Mn2+ activated Ca10K(PO4)7 phosphors were prepared by solid-state reaction, and their photoluminescence properties upon ultraviolet and vacuum ultraviolet excitation were investigated. Under 254 nm excitation, a series of Ca10K(PO4)7:xMn2+ samples exhibit two emission bands at 463 and 650 nm, which could be attributed to oxygen defects and 4T16A1 transition of Mn2+, respectively. And an energy transfer from defects to Mn2+ has been observed. With the Mn2+ content increased, the emitting hues of Ca10K(PO4)7:Mn2+ can range from blue to red. By co-doping Ce3+ to Ca10K(PO4)7:Mn2+, the emission intensity of Mn2+ is strongly enhanced due to an efficient energy transfer by [Ce3+ → Mn2+] and [defects → Ce3+ → Mn2+]. But under 147 nm excitation, the emission intensity of Mn2+ in Ca10K(PO4)7:0.25Mn2+ decreases slightly compared with that in Ca10K(PO4)7:025Mn2+, 0.1Ce3+, 0.1K+ due to the host sensitization competition between Ce3+ and Mn2+.  相似文献   

2.
Eu3+-doped triple phosphate Ca8MgR(PO4)7 (R = La, Gd, Y) was synthesized by the general high temperature solid-state reaction. This phosphor was characterized by X-ray diffraction (XRD), Fourier transform infrared spectroscopy (FT-IR) and emission spectra. XRD and FT-IR analysis indicated that Ca8MgR(PO4)7 (R = La, Gd, Y) crystallized in single-phase component with whitlockite-like structure (space group R3c) of β-Ca3(PO4)2. Under the excitation of UV light, the phosphors show bright red emission assigned to the transition (5D0 → 7F2) at 612 nm. The crystallographic sites of Eu3+ ions in Ca8MgR(PO4)7 (R = La, Gd, Y) host were discussed on the base of site-selective excitation and emission spectra, luminescence decay and its host crystal structure.  相似文献   

3.
The photoluminescent properties of a series of Tb3+-doped Na3GdP2O8 phosphors excitable by vacuum ultraviolet and ultraviolet light are reported. The host related absorption, f-f and f-d transitions of Gd3+ and Tb3+, and charge transfer of O2− → Gd3+ and O2− → Tb3+ are assigned. Under 147 nm light excitation, Na3GdP2O8:Tb3+ phosphors show efficient green emissions with a dominant peak at 545 nm. The optimal sample Na3Gd0.4Tb0.6P2O8 shows a shorter decay time and a comparable brightness when compared with the commercial Zn2SiO4:Mn2+ green phosphor. These results demonstrate that it is a potential candidate for plasma display panels application.  相似文献   

4.
Bi3+ and Tb3+ ions co-doped GdAlO3 (GAP) nanophosphors have been synthesized by means of solvothermal reaction method. The XRD pattern of GAP phosphor confirms their orthorhombic phase. The luminescence properties of these phosphors have been explored by analyzing their excitation and emission spectra along with their decay curves. The excitation spectra of GAP:Tb3+, Bi3+ phosphors consist of a broad band in the shorter wavelength region due to the 4f8 → 4f75d1 transition of Tb3+ ions overlapped with the 6s2 → 6s16p1 (1S0 → 3P1) transition of Bi3+ ions and some sharp peaks in the longer wavelength region due to f → f transitions of Tb3+ ions. The present phosphors exhibit green color due to strong 5D4 → 7F5 transition of Tb3+ ions. The emission intensity was enhanced by co-doping with Bi3+ ions under 292 nm excitation, which indicate that the efficient energy transfer occurred from Bi3+ to Tb3+ ions.  相似文献   

5.
The present investigation aims to demonstrate the potentiality of Tb3+ and Ce3+ co-doped Ca4Y6(SiO4)6O phosphors. By incorporation of Ce3+ into Ca4Y6(SiO4)6O: Tb3+, the excitation band was extended from short-ultraviolet to near-ultraviolet region. The energy transfer from Ce3+ to Tb3+ in Ca4Y6(SiO4)6O host was investigated and demonstrated to be a resonant type via a dipole–dipole mechanism with the critical distance of 10.2 Å. When excited by 352 nm, Ca4Y6(SiO4)6O: Ce3+, Tb3+ exhibited a brighter and broader violet-blue emission (421 nm) from the Ce3+ and an intense green emission (542 nm) from the Tb3+. Combining the two emissions whose intensities were adjusted by changing the doping levels of the co-activator, an optimized white light with chromaticity coordinates of (0.278, 0.353) is generated in Ca4Y6(SiO4)6O: 2% Ce3+, 8% Tb3+, and this phosphor could be potentially used in near-ultraviolet light-emitting diodes.  相似文献   

6.
A blue-emitting phosphor of NaMg4(PO4)3:Eu2+, Ce3+ was prepared by a combustion-assisted synthesis method. The phase formation was confirmed by X-ray powder diffraction measurement. Photoluminescence excitation spectrum measurements show that the phosphor can be excited by near UV light from 230 to 400 nm and presents a dominant luminescence band centered at 424 nm due to the 4f65d1 → 4f7 transition of Eu2+ ions at room temperature. Effective energy transfer occurs in Ce3+/Eu2+ co-doped NaMg4(PO4)3 due to large spectral overlap between the emission of Ce3+ and excitation of Eu2+. Co-doping of Ce3+ enhances the emission intensity of Eu2+ greatly by transferring its excitation energy to Eu2+, and Ce3+ plays a role as a sensitizer. Ce3+-Eu2+ co-doped NaMg4(PO4)3 powders can possibly be applied as blue phosphors in the fields of lighting and display.  相似文献   

7.
The vacuum ultraviolet excited luminescent properties of Eu3+, Tb3+, Dy3+, Sm3+ and Tm3+ in the matrices of Ca4Y6(SiO4)6O were investigated. The bands at about 173 nm in the vacuum ultraviolet excited spectra were attributed to host lattice absorption of the matrix Ca4Y6(SiO4)6O. For Eu3+-doped samples, the O2− → Eu3+ CTB was identified at 258 nm. Typical 4f-5d absorption bands in the region of 195-300 nm were observed in Tb3+-doped samples. For Dy3+-doped and Sm3+-doped samples, the broad excitation bands consisted of host absorptions, CTB and f-d transition. For Tm3+-doped samples, the O2− → Tm3+ CTB was located at 191 nm. About the color purity and emission intensity, Ca4Y6(SiO4)6O:Tb3+ is an attractive candidate of green light PDP phosphor, and Ca4Y6(SiO4)6O:Dy3+ has potential application in the field of mercury-free lamps.  相似文献   

8.
NaGd(MoO4)2:Eu3+ (hereafter NGM:Eu) phosphors have been prepared by sol-gel method. The properties of the resulting phosphors are characterized by X-ray diffraction (XRD), scanning electron microscope (SEM), photoluminescence (PL) spectra and decay curve. The excitation spectra of NGM:Eu phosphors are mainly attributed to O → Mo charge-transfer (CT) band at about 282 nm and some sharp lines of Eu3+ f-f transitions in near-UV and visible regions with two strong peaks at 395 and 465 nm, respectively. Under the 395 and 465 nm excitation, intense red emission peaked at 616 nm corresponding to 5D0 → 7F2 transition of Eu3+ are observed for 35 at.% NGM:Eu phosphors as the optimal doping concentration. The luminescence properties suggest that NGM:Eu phosphor may be regarded as a potential red phosphor candidate for near-UV and blue light-emitting diodes (LEDs).  相似文献   

9.
New red Ca10K(PO4)7:Eu3+, K+ phosphors were synthesized by solid state reaction and their photoluminescence properties as well as those by co-doping Mo6+ under near ultraviolet excitation were investigated. From the excitation spectra monitored at 611 nm, it can be seen that the strongest excitation peak is situated at 393 nm, well matching with the emission wavelength of near-ultraviolet chips for white LEDs. Upon 393 nm excitation, the brightness of Ca9K(PO4)7:0.5Eu3+, 0.5 K+ with the optimal Eu3+-doping concentration is about 2.3 times stronger than that of the commercial red Y2O3:Eu3+ phosphor. The introducing of Mo6+, which results in a possible variety for the excited energy level of the host, can enhance the brightness of Eu3+ to be maximized by about 15%. The CIE chromaticity coordinates of Ca9K(PO4)7:0.5Eu3+, 0.5 K+ are calculated to (0.654, 0.345), which are close to the (0.67, 0.33) standard of the National Television System Committee. All the above results indicate Eu3+-activated Ca10K(PO4)7 is a potential candidate for white LEDs.  相似文献   

10.
M2Y8(SiO4)6O2: Tb3+ (M = Ca, Sr) phosphors have been synthesized with a new silicon source silane crosslinking reagent (N-2-aminoethylic-3-aminopropyldiethoxysilane [NH2(CH2)2NH(CH2)3SiCH3(OCH3)2], abbreviated as AEAPMMS) through the sol-gel process, both of which present the characteristic emission 5D4 → 7FJ (J = 6, 5, 4, 3) of Tb3+ ions. It is interesting to be found that the high energy level blue emission (5D3 → 7FJ (J = 6, 5, 4, 3) transition) still can be found in the emission spectrum of Ca2Y8(SiO4)6O2: Tb3+ while it disappears in the emission spectrum of Sr2Y8(SiO4)6O2: Tb3+ for the cross-relaxation-induced quenching.  相似文献   

11.
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   

12.
Tb3+-doped SrWO4 phosphors with a scheelite structure have been prepared by hydrothermal reaction. X-ray powder diffraction, field-emission scanning electron microscopy, photoluminescence excitation and emission spectra and decay curve were used to characterize the resulting samples. Scanning electron microscopy image showed that the obtained SrWO4:Tb3+ phosphors appeared to be nearly spherical and their sizes ranged from 1 to 3 μm. Photoluminescence spectra indicated the phosphors emitted strong green light centered at 545 nm under ultraviolet light excitation. Because 12 at.% SWO4:Tb3+ phosphor exhibits intensive green emission under 254 nm excitation in comparison with the commercial green fluorescent lamp phosphor (LaPO4:Ce,Tb), the excellent luminescence properties make it a new promising green phosphor for fluorescent lamps application.  相似文献   

13.
A novel red long lasting phosphorescent materials β-Zn3(PO4)2:Mn2+,Sm3+ is firstly synthesized by high-temperature solid-state reaction. The influence of Sm3+ ions on luminescence and long lasting phosphorescence properties of Mn2+ in phosphor β-Zn3(PO4)2:Mn2+,Sm3+ are systematically investigated. It is found that the red phosphorescence (λ = 616 nm) performance of Mn2+ ion such as brightness and duration is largely improved when Sm3+ ion is co-doped into the matrix in which Mn2+ ion acts as luminescent center and Sm3+ ion plays an important role of electron trap. Thermoluminescence spectrums show that there exists one peak in β-Zn3(PO4)2:Mn2+,Sm3+, the depth of which is 0.33 eV, and that there are three peaks in β-Zn3(PO4)2:Mn2+, among which the depth of the lowest temperature peak in β-Zn3(PO4)2:Mn2+ is 0.37 eV. Such differences in the trap depth result in the improvement of red long lasting phosphorescence of Mn2+ in present matrix.  相似文献   

14.
A novel green phosphor Mg2GeO4:Tb3+ with pure phase was prepared by the solid state reaction. The luminescence properties were investigated in detail. The diffusion reflection spectra of the undoped and Tb3+ doped Mg2GeO4 phosphors were recorded, the result reveals that there is an absorption band superposition of the host material and Tb3+ ion. The study on the excitation and diffusion spectra shows that there is an effective energy transfer from the host material to Tb3+ ion. Under 277 and 172 nm excitation, the phosphor presents predominant green emission at 543 and 547 nm respectively. The excitation intensity at 172 nm is about 1.8 times of that at 272 nm. The promising luminescence properties make it a candidate for application in Plasma Display Panel.  相似文献   

15.
A novel phosphor K2Gd(WO4)(PO4):Tb was prepared via a solid-state reaction. The crystal structure of K2Gd(WO4)(PO4) as a new host matrix for luminescence was defined to be the orthorhombic system with space group Ibca (73). Visible quantum cutting under Tb3+ 4f8–4f75d1 excitation and host excitation in K2Gd(WO4)(PO4):Tb3+ via a downconversion was identified. In order to rationalize the quantum cutting effect, the proper mechanism was proposed. According to calculations, the quantum efficiency was up to 183.2% and 176.4% under excitation at 235 nm and 150 nm, respectively. When compared with Zn2SiO4:Mn2+ (P1-G1S), KGWP:0.5Tb3+ is slightly less bright over 450–650 nm but has a shorter decay time.  相似文献   

16.
The luminescent properties of Ca2Gd8(1−x)(SiO4)6O2:xDy3+ (1% ≤ x ≤ 5%) powder crystals with oxyapatite structure were investigated under vacuum ultraviolet excitation. In the excitation spectrum, the peaks at 166 nm and 191 nm of the vacuum ultraviolet region can be assigned to the O2− → Gd3+, and O2− → Dy3+ charge transfer band respectively, which is consistent with the theoretical calculated value using Jφrgensen's empirical formula. While the peaks at 183 nm and 289 nm are attributed to the f-d spin-allowed transitions and the f-d spin-forbidden transitions of Dy3+ in the host lattice with Dorenbos's expression. According to the emission spectra, all the samples exhibited excellent white emission under 172 nm excitation and the best calculated chromaticity coordinate was 0.335, 0.338, which indicates that the Ca2Gd8(SiO4)6O2:Dy3+ phosphor could be considered as a potential candidate for Hg-free lamps application.  相似文献   

17.
This study applies a novel approach to prepare the terbium-doped yttrium oxide phosphors (Y2O3:Tb3+) using the bicontinuous cubic phase (BCP) process. The experimental results show that the prepared precursor powder was amorphous yttrium hydroxide Y1−xTbx(OH)3 with a spherical shape and primary size 30–50 nm. High crystallinity phosphors with body-centered cubic structures were obtained after heat treatment above 700 °C for 4 h. The primary size of the phosphors grew to 100–200 nm, and dense agglomerates with a size below 1 μm were formed during the calcination. The obtained Y2O3:Tb3+ phosphor had a strong green emitting at 542 nm. The optimum Tb3+ concentration was 1 mol% to obtain the highest PL intensity. This study indicates that the calcining temperature of 700 °C needed for high luminescence efficiency in this work is much lower than 1000 °C or above needed for the conventional solid-state method.  相似文献   

18.
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   

19.
The spectroscopic properties of Na3Gd(PO4)2 and Na3Gd(PO4)2:Ce3+ phosphors in the VUV-UV spectral range were investigated. Five excitation bands of Ce3+ ions at Gd3+ sites are observed at wavelengths of 205, 246, 260, 292, and 321 nm. Doublet Ce3+ 5d → 4f emission bands are observed at 341 and 365 nm with a decay constant τ1/e around 26 ns. The X-ray excited luminescence of Na3Gd0.99Ce0.01(PO4)2 at room temperature shows a photon yield of ∼17,000 photons/MeV of absorbed X-ray energy.  相似文献   

20.
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   

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