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1.
A phosphate compound, BaMgP2O7 was co-doped with Eu2+ and Mn2+ for making a red-emitting phosphor. The phosphor was prepared by a solid-state reaction at high temperature. The photoluminescence properties were investigated under ultraviolet (UV) ray excitation. From a powder X-ray diffraction (XRD) analysis, the formation of single-phased BaMgP2O7 with a monoclinic structure was confirmed. In the photoluminescence spectra, the BaMgP2O7:Eu,Mn phosphor emits two distinctive colors: a blue band centered at 409 nm originating from Eu2+ and a red band at 615 nm caused by Mn2+. Also, efficient energy transfer from Eu2+ to Mn2+ in the BaMgP2O7:Eu,Mn system was verified by observing that the excitation spectra of BaMgP2O7:Eu,Mn emitted at 409 and 615 nm by Eu2+ emission and Mn2+ emission, respectively, are almost the same as that of BaMgP2O7:Eu monitored at 409 nm. The optimum concentration of Eu2+ ions in BaMgP2O7:0.015Eu excited at 309 nm wavelength is 1.5 mol%. With an increase of Mn2+ content up to 17.5 mol%, a systematic decline in the intensity of the excitation spectrum by Eu2+ and a gradual growth in the intensity of emission band by Mn2+ were observed. Accordingly, the optimum concentration of Mn2+ in BaMgP2O7:0.015Eu,Mn is 17.5 mol%. The maximum spectral overlap between emission of Eu2+ and excitation of Mn2+ is achieved in a composition of BaMgP2O7:0.015Eu,0.175Mn, resulting in considerable red-emission at 615 nm.  相似文献   

2.
Eu2+ and Mn2+ co-doped SrMg2(PO4)2 phosphors with blue and red two emission bands were prepared by the high temperature solid state method and their luminescent properties have been investigated as a function of activator and co-activator concentrations. Resonance-type energy transfers from Eu2+ to Mn2+ were discovered by directly overlapping the Eu2+ emission spectrum and the excitation spectrum of Mn2+. Efficiencies of energy transfer were also calculated according to the changes of relative intensities of Eu2+ and Mn2+ emission. According to the principle of energy transfer, we demonstrated that the phosphor SrMg2(PO4)2:Eu2+,Mn2+ with double emission bands exhibited a great potential as a phosphor for ultraviolet light-emitting diodes and the relative intensities of blue and red emission could be tuned by adjusting the contents of Eu2+ and Mn2+. PACS 78.55.-m  相似文献   

3.
Aluminate phosphors SrMgAl10O17 codoped with Eu2+ and Mn2+ ions were prepared by solid-state reaction. The phase structure and photoluminescence properties of the as-prepared phosphors were characterized by powder X-ray diffraction, photoluminescence excitation and emission spectra. Upon excitation of UV light, two broad emission bands centered at 470 and 515 nm were observed, and they were assigned to Eu2+ and Mn2+ emissions, respectively. The emission color of the phosphors can be tuned from blue to cyan and finally to green by adjusting the concentration ratios of Eu2+ and Mn2+. Effective energy transfer occurs from Eu2+ to Mn2+ in the host due to the spectral overlap between the emission band of Eu2+ and the excitation bands of Mn2+. The energy transfer mechanism was demonstrated to be electric dipole–quadrupole interaction. The energy transfer efficiency and critical distance were also calculated. The phosphors exhibit strong absorption in near UV spectral region and therefore they are potentially useful as UV-convertible phosphors for white LEDs.  相似文献   

4.
采用高温固相法合成了BaZnP2O7:Eu2+,Mn2+荧光粉,并对其发光性质及Eu2+对Mn2+的能量传递机理进行了研究.Eu2+和Mn2+在380 nm和670nm的发射峰分别由Eu2+的5d—4f跃迁和Mn2+4T1(4关键词: 磷酸盐 2+')" href="#">Eu2+ 2+')" href="#">Mn2+ 能量传递  相似文献   

5.
Eu2+ and Mn2+ singly doped and codoped Na(Sr,Ba)PO4 phosphors were synthesized, and their luminescent properties were investigated. A broad blue emission and a broad orange emission band were observed in Na(Sr,Ba)PO4:Eu2+, Mn2+ phosphor. The resonant-type energy transfer from Eu2+ to Mn2+ was demonstrated, and the energy transfer efficiency was also calculated according to their emission spectra. Based on the principle of energy transfer, the emission intensity ration of Eu2+ and Mn2+ could be appropriately tuned by adjusting the contents of activators. Due to the strong absorption in the 250–400 nm range, Na(Sr,Ba)PO4:Eu2+, Mn2+ phosphor could be used as a potential candidate for near-UV white light-emitting diodes (LEDs).  相似文献   

6.
The luminescent properties of Eu3+ and Eu2+ ions in sodium pyrophosphate, Na4P2O7, have been studied. The excitation spectrum of the Eu3+ emission in Na4P2O7 consists of several sets of bands in the range 280–535 nm due to 4f–4f transitions of Eu3+ ions and a broad band with a maximum at about 240 nm interpreted to be due to a charge transfer (CT) transition from oxygen 2p states to empty states of the Eu3+ 4f6-configuration. Although the CT band energy is large enough, the quantum efficiency (η) of the Eu3+ emission in Na4P2O7 under CT excitation was estimated to be very low (η ≤ 0.01). In terms of a configurational coordinate model, this fact is interpreted as a result of the high efficiency of a radiationless relaxation from the CT state to the 7F0 ground state of Eu3+ ions occupying sodium sites in Na4P2O7. A strong reducing agent is required in order to stabilize Eu2+ ions in Na4P2O7 during the synthesis. Several nonequivalent Eu2+ luminescence centers in Na4P2O7 were found.  相似文献   

7.
Eu2+/Mn2+-doped KCaPO4 phosphors were prepared by conventional solid-state reaction. X-ray powder diffraction (XRD), SEM, photoluminescence excitation, and emission spectra, and the luminescence decay curves were measured. Mn2+ singly doped KCaPO4 shows the weak origin-red luminescence band peaked at about 590 nm. The Eu2+/Mn2+ co-doped phosphors emit two distinctive luminescence bands: a blue one centered at 480 nm originating from Eu2+ ions and a broad red-emitting one peaked at 590 nm from Mn2+ ions. The luminescence intensity from Mn2+ ions can be greatly enhanced with the co-doping of Eu2+ ions. The efficient energy transfer from Eu2+ to Mn2+ was verified by the photoluminescence spectra together with the luminescence decay curves. The resonance-type energy transfer via a dipole–quadrupole interaction mechanism was supported by the decay lifetimes. The emission colors could be tuned by changing the Mn2+-doping concentration.  相似文献   

8.
A single-phased (Ba,Sr)3MgSi2O8:Eu2+, Mn2+ phosphor with 660 nm-featured dual band-emission is investigated upon optimizing composition to simulate the artificial photosynthetic action spectrum (PAS) for near-ultraviolet (NUV) biological light-emitting diodes (bio-LEDs). A specific composition range in Ba–Sr binary solid solution of (Ba,Sr)3MgSi2O8 is found to be capable of obtaining single-phased host in the absence of an easily formed orthosilicate impurity, leading to a 660 nm-featured red band emission of Mn2+ induced by an efficient energy transfer from a co-doped blue-emitting Eu2+ sensitizer. This dual broad band emission phosphor has a 72 nm full width at half maximum (FWHM) for red band that covers fairly well to the absorption spectrum of chlorophyll and PAS for most plants, enabling a flexible option in the application of bio-illumination for artificial photosynthesis.  相似文献   

9.
Changyu Shen  Yi Yang  Huajun Feng 《Optik》2010,121(1):29-32
The shift of the emission band to longer wavelength (yellow-orange) of the Ba2MgSi2−xAlxO7: 0.1Eu2+ phosphor under the 350-450 nm excitation range has been achieved by adding the codoping element (Mn2+) in the host. The single-host silicate phosphor for WLED, Ba2MgSi2−xAlxO7: 0.1Eu2+, 0.1Mn2+ was prepared by high-temperature solid-state reaction. It was found experimentally that, its three-color emission peaks are situated at 623, 501 and 438 nm, respectively, under excitation of 350-450 nm irradiation. The emission peaks at 438 and 501 nm originate from the transition 5d to 4f of Eu2+ ions that occupy the two Ba2+ sites in the crystal of Ba2MgSi2−x AlxO7, while the 623 nm emission is attributed to the energy transfer from Eu2+ ions to Mn2+ ions. The white light can be obtained by mixing the three emission colors of blue (438 nm), green (501 nm) and red (623 nm) in the single host. When the concentrations of the Al3+, Eu2+ and Mn2+ ions were 0.4, 0.1 and 0.1 mol, respectively, the sample presented intense white emission. The addition of Al ion to the host leads to a substantial change of intensity ratio between blue and green emissions. White light could be obtained by combining this phosphor with 405 nm light-emitting diodes. The near-ultraviolet GaN-based Ba2MgSi1.7 Al0.3O7: 0.1Eu2+, 0.1Mn2+ LED achieves good color rendering of over 85.  相似文献   

10.
BaMg2Al6Si9O30:Eu2+ phosphors are synthesized by the solid-state reaction method and their photoluminescence (PL) properties are investigated. The ultraviolet emission originates from Eu2+(I) substituting for Ba2+ sites, whereas the blue emission is attributed to Eu2+(II) substituting for Mg2+ sites. With increasing Eu2+ doping concentrations, the blue emission band shifts to long wavelength and the PL intensity ratio of blue to ultraviolet emission increases. Energy transfer between the two different Eu2+ ions is analyzed by photoluminescence excitation and emission spectra, and lifetimes. Results indicate that the emission spectra can be tuned by changing Eu2+ contents. We have also demonstrated that BaMg2Al6Si9O30:Eu2+ phosphor is a kind of potential phosphor for fluorescent lamps.  相似文献   

11.
Eu2+ and Mn2+ co-doped Ca8Zn(SiO4)4Cl2 phosphors have been synthesized by a high temperature solid state reaction. Energy transfer from Eu2+ to Mn2+ is observed. The emission spectra of the phosphors show a green band at 505 nm of Eu2+ and a yellow band at 550 nm of Mn2+. The excitation spectra corresponding to 4f7-4f65d transition of Eu2+ cover the spectral range of 370-470 nm, well matching UV and/or blue LEDs. The shortening of fluorescent lifetimes of Eu2+ followed by simultaneous increase of fluorescent intensity of Mn2+ with increasing Mn2+ concentrations is studied based on energy transfer. Upon blue light excitation the present phosphor can emit intense green/yellow in comparison with other chlorosilicate phosphors such as Eu2+ and Mn2+ co-doped Ca8Mg(SiO4)4Cl2 and Ca3SiO4Cl2, demonstrating a potential application in phosphor converted white LEDs.  相似文献   

12.
《Current Applied Physics》2010,10(4):1087-1091
Eu2+ and Mn2+ co-doped calcium aluminate silicate chloride phosphors with the chemical composition of Ca3Al2Si2O8Cl4:Eu2+, Mn2+ have been prepared by a solid-state method, and their luminescence properties have been investigated by tuning the En2+/Mn2+ ions concentration. The phase formation and microstructure of Ca3Al2Si2O8Cl4:Eu2+, Mn2+ phosphors have been illuminated by XRD and SEM analysis. Photoluminescence (PL) spectrum reveals that Ca3Al2Si2O8Cl4:Eu2+ exhibits a strong blue emission band centered at 431 nm, while Ca3Al2Si2O8Cl4:Eu2+, Mn2+ can emit bluish-white light by adjusting the Mn2+ content appropriately. The energy transfer mechanism involving Eu2+–Mn2+ have also been investigated.  相似文献   

13.
A single phased white light emitting phosphors K2Ca1−xyP2O7: xEu2+, yMn2+ were synthesized by solid state reaction method. The Effective energy transfer occurs in this phosphor due to the large spectral overlap between the emission of Eu2+ and the excitation of Mn2+. The emission hue of K2Ca1−xyP2O7: xEu2+, yMn2+ from blue to white light can be obtained by tuning the Eu2+/Mn2+ content ratio. The energy transfer mechanism from Eu2+ to Mn2+ in this phosphor was carefully investigated and demonstrated to be via the dipole–quadrupole interaction.  相似文献   

14.
用高温固相法合成了Eu2+,Mn2+共激活的Ca2SiO3Cl2高亮度白色发光材料,并对其发光性质进行了研究. 该荧光粉在近紫外光激发下发出强的白色荧光,Eu2+中心形成峰值为419 nm和498 nm的特征宽带,通过Eu2+中心向Mn2+中心的能量传递导致了峰值为578 nm的发射,三个谱带叠加从而在单一基质中得到了白光. 激发光谱均分布在250—415 nm的波长范围,红绿蓝三个发射带的激发谱峰值分别位于385 nm,412 nm,370 nm和396 nm处,可以被InGaN管芯产生的紫外辐射有效激发. Ca2SiO3Cl2:Eu2+,Mn2+是一种很有前途的单一基质白光LED荧光粉.  相似文献   

15.
Photoluminescence and excitation spectra of the spinel-type MgGa2O4 with 0.5 mol. % Mn2+ ions and Eu3+ content from 0 to 8 mol. % have been investigated in this work at room temperature. Polycrystalline samples were synthesized via high-temperature solid-state reaction method. Photoluminescence spectra of all samples exhibit host emission presented by a broad “blue” band peaking ∼430 nm, which consists of at least three elementary bands that correspond to different host defects. Excitation of the host luminescence showed the broad band with a maximum at 360 nm. Characteristic bands of d–d transitions of Mn2+ ions and f–f transitions of Eu3+ ions together with charge-transfer bands (CTB) of these ions were also found on the excitation spectra. Mn2+ and Eu3+ co-doped samples emit in green and red spectral regions. Mn2+ ions are responsible for the green emission band at 505 nm (4Т16А1 transition). The studies of photoluminescence spectra of activated samples with different Eu3+ ions content show characteristic f–f luminesecence of Eu3+ ions. The maximum of Eu3+ emission was found at 618 nm (5D07F2) and optimal concentration of activator ions was around 4 mol. %.  相似文献   

16.
The emission properties of Eu2+ and Mn2+ in monoclinic SrAl2Si2O8 (M-SAS) and hexagonal BaAl2Si2O8 (H-BAS), both of which have only one alkaline-earth site, were studied. The emission peaks of both Eu2+ (405 nm) and Mn2+ (564 nm) in SrAl2Si2O8, are located at longer wavelengths, compared with those in H-BAS (373 nm for Eu2+ and 518 nm for Mn2+), because of the stronger crystal field strength at the Sr site. EPR spectra showed that the g values of Mn2+ are 4.5065 in M-SAS:Mn and 2.0247 in H-BAS:Mn. Magnetic measurements proved that Mn2+ was at high-spin state in both hosts. The large g value of Mn2+ in M-SAS was ascribed to the mixing of the first excitation state to the ground state, both of which have lower d orbital degeneracy due to the lower symmetry of Mn2+ site. The transfer efficiency from Eu2+ to Mn2+was about 10% in M-SAS, higher than that in H-BAS (5%). This was probably because Eu2+ emission overlaps the relatively low excitation level of Mn2+ in M-SAS. In order to obtain high transfer efficiency, it was necessary for the Eu2+ emission to overlap the lowest excitation level of Mn2+. The results obtained in this work may be helpful to design the new white or red phosphors for white-light emitting diode (w-LED) applications.  相似文献   

17.
Eu2+ and Mn2+ co-doped Ba2Ca(BO3)2 phosphors yield two emission bands consisting of green and red components under the excitation of 360 nm, which shows a great potential for white LEDs. Effective energy transfer occurs in Eu2+/Mn2+ co-doped Ba2Ca(BO3)2 host due to the large spectral overlap between the emission of Eu2+ and the excitation of Mn2+. The energy transfer from Eu2+ to Mn2+ is thoroughly investigated by their excitation, emission and photoluminescence decay behaviors, and is demonstrated to be via the dipole–quadrupole interaction.  相似文献   

18.
钟瑞霞  张家骅  李明亚  王晓强 《物理学报》2012,61(11):117801-117801
三基色荧光粉中, 红色荧光粉性能较差, 为获得性能优良的红色荧光粉, 本文采用高温固相法合成了Eu2+, Cr3+单掺杂及共掺杂的碱土金属多铝酸盐MAl12O19 (M =Ca, Sr, Ba) 发光体. 实验表明, 在以上三种基质中均存在Eu2+→Cr3+的能量传递, 利用能量传递可以有效将Eu2+的蓝光或绿光转换为红光. 三种碱土金属多铝酸盐基质的晶体结构相似,但Eu2+, Cr3+发光受晶体场影响,导致在不同的基质中Eu2+, Cr3+间能量传递效率不同.通过光谱分析及能量传递效率计算发现, 相同掺杂浓度下,CaAl12O19中Eu2+→Cr3+的能量传递效率最高,SrAl12O19次之, BaAl12O19最低.红光转换率在CaAl12O19中最高.  相似文献   

19.
White-light-emitting T-phase Eu2+/Mn2+-codoped (Ba, Ca)2SiO4 phosphors are achieved in terms of the energy transfer between Eu2+ and Mn2+ ions. All spectra consist of the relatively broad green and the red emission bands, which thus result in a warm-white color with a color temperature of ∼4000 K. With increasing Eu2+ ions at fixed Mn2+ concentrations, a strong correlation between the luminescence and the electron paramagnetic resonance spectra is observed. This demonstrates that Eu2+ doping causes a perturbation of Mn2+ sites and the violation of their selection rules that enhances Mn2+-related emissions.  相似文献   

20.
The ZnGa2O4:Mn2+, Cr3+ phosphors show three colors; the blue band of 380 nm from the charge transfer between Ga-O, the green band of 505 nm from Mn2+ and the red band of 705 nm from Cr3+. As a variation of Mn2+ or Cr3+ concentrations in ZnGa2O4:Mn2+, Cr3+, the relative emission intensity can be tuned. This phenomenon is explained in terms of the energy transfer based on four factors: the spectral overlap between the energy donors (Ga-O) and the energy accepters of Mn2+ or Cr3+, the absorption cross section of the energy accepters, the distance between them, and the decay time of the energy donors. ZnGa2O4:0.0025Mn2+, 0.010Cr3+ shows the CIE coordinates of x=0.4014, y=0.3368, which is a pure white light. The single-phased full-color emitting ZnGa2O4:Mn2+, Cr3+ phosphors can be applied to illumination devices.  相似文献   

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