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1.
运用高温合成的方法合成SrBPO5:Eu2+,Mn2+,用X射线衍射仪(XRD)、红外光谱仪(IR),以及荧光光度计(PL)对合成产物的结构和发光性质进行了研究。XRD测试结果表明,在1000℃下烧结6h得到SrBPO5单相。发光光谱测试表明,在350nm紫外线激发下,宽带发射最强峰位于400nm和498nm处,当Mn2+含量进一步增加时,发射光颜色从蓝色向蓝白色移动,测试结果说明SrBPO5:Eu2+,Mn2+有希望应用于白色LED方向。  相似文献   

2.
本文采用高温固相法合成了Ca9Al(Po4)7:Eu3+红色荧光粉,并对其发光特性进行了研究。该荧光粉在350nm-410nm有一个宽带激发峰,适用于UVLED管芯的激发;在紫外激发下的发射峰由位于589nm和593nm,612nm、616nm和619nm,654nm及688nm四组线状峰构成,分别对应于Eu3+的(5D0~7F1)、(5D0~7F2)、(5D0~7F3)及(5D0~7F4)特征跃迁,呈现红色发光。探讨了掺杂的Eu3+浓度对样品发光强度的影响,其最佳掺杂浓度为5%。研究了其自身浓度猝灭机理,为电偶极-电四极相互作用。发现不同电荷补偿剂Li+,Na+,K+的引入均能使发光强度得到提高,尤其以Li+最佳,发光强度提高了大约35%。结果表明,Ca9Al(Po4)7:Eu3+是一种适用于UVLED管芯激发的用于白光LED的红色荧光粉。  相似文献   

3.
Eu2+在KNaCa2(PO42中的发光及晶体学格位   总被引:2,自引:0,他引:2  
采用高温固相法制备了KNaCa2(PO4)2:Eu2+蓝色荧光粉,并研究了材料的发光特性.在400 nm近紫外光激发下,材料呈非对称的单峰发射,主峰位于470 nm.监测470 nm发射峰,对应的激发光谱覆盖200~450 nm,主峰位于400 nm,说明材料能够很好的吸收紫外?近紫外光,发射蓝色光.利用van Uitert公式计算了Eu2+取代KNaCa2(PO4)2中Ca2+时所占晶体学格位,得出461和502 nm发射分别归属于八配位和六配位的Eu2+发射.研究了Eu2+掺杂浓度对KNaCa2(PO4)2:Eu2+材料发射强度的影响,结果显示Eu2+的最佳掺杂浓度为1mol%,利用Dexter理论得出其浓度猝灭机理为电偶极?电偶极相互作用.  相似文献   

4.
通过高温固相反应在空气中制备了一系列Eu2+掺杂的BaMgSiO4∶Eu2+发光材料,研究了其发光性能及M2CO3(M=Li、Na、K)助溶剂对其性能的影响。利用X射线粉末衍射(XRD)、荧光光谱(PL)和扫描电镜(SEM)对合成的样品进行表征。研究表明,Eu2+进入Ba(1)和Ba(2)位置有利于Eu2+在空气中稳定存在。M2CO3(M=Li、Na、K)助溶剂促进Eu3+离子在空气中还原成Eu2+离子,提高了BaMgSiO4∶Eu2+的发光强度。当Na2CO3用量为6%时,BaMg-SiO4∶Eu2+的发光强度达到还原气氛中制备的91%。  相似文献   

5.
采用燃烧法按钙镁比x/y分别为10/0、9/1、8/2、7/3、6/4、5/5合成了CaxMgy(VO4)n∶Eu3+荧光粉。利用XRD测试了样品的相组成,结果表明,当x/y>8/2时样品以Ca3(VO4)2为主晶相,当x/y=8/2时样品中开始出现Ca5Mg4(VO4)6相。利用荧光分光光度计测试了样品的荧光光谱,结果表明,当x/y>8/2时样品表现为615nm的锐线发射,当x/y<8/2时样品表现为615nm的锐线发射和400~600nm之间的宽带发射,发光颜色随x/y从10/0到5/5由红色向黄绿色变化。  相似文献   

6.
采用柠檬酸溶胶燃烧法合成了Ca3(VO4)2:Eu3+红色发光材料。利用XRD、SEM、荧光分光光度计等测试分析方法研究了合成温度、柠檬酸用量以及Eu3+含量等对合成样品组成、结构、显微特征和发光性能的影响。结果表明,采用柠檬酸溶胶燃烧法可以在700~1000℃范围内合成纯度高、结晶度好、粒度均匀的Ca3(VO4)2:Eu3+红色发光粉。优化条件为温度900℃、n(柠檬酸):n(Ca2++V5+)=0.8、Eu3+摩尔分数6%,合成产物的红光发光效果最好。  相似文献   

7.
采用固相法制备了Lu2(MoO4)3:Eu3+系列红色荧光粉,利用X射线粉末衍射仪(XRD)、场发射扫描电子显微镜(FE-SEM)、能谱仪(EDS)和荧光光谱(PL)仪对制备荧光粉的结构、形貌、元素组成及光致发光性能进行表征与分析。实验结果表明Eu3+成功掺入基质晶格中并得到Lu2(MoO4)3:Eu3+纯相样品,荧光粉颗粒大小在2μm左右。制备温度依赖样品光致发光结果表明1 000℃下制备Lu2(MoO4)3:Eu3+样品发光性能最好。煅烧时间依赖样品光致发光结果表明1 000℃下煅烧时间为6 h时样品发光效果最好。反常于荧光粉发光热猝灭现象,Lu2(MoO4)3:Eu3+样品在外界测试温度为250℃左右时出现热增强...  相似文献   

8.
利用高温固相反应制备了Ce3+、Eu3+共掺杂的(Ce0.01EuxLu0.99-x)3Al5O12(x=0.02%、0.5%、1%、2%)多晶粉末,并对其结构和光谱学特性,特别是Ce3+向Eu3+的能量传递问题进行了研究。X射线衍射结果显示,所制备样品具有单一的石榴石结构。利用X射线激发发射谱和光致激发发射谱研究了Eu3+掺入浓度对发光中心Ce3+和Eu3+离子发光特性的影响以及Ce3+向Eu3+的能量传递。样品的热释光谱进一步证明Ce3+向Eu3+的能量传递及其与Eu3+浓度之间的变化关系。  相似文献   

9.
采用高温固相法合成系列Eu~(2+)掺杂的单一基质的白光荧光粉(Sr_(0.95)Mg_(0.05))_3(PO_4)_2.该荧光粉可有效被270~390nm的紫外光激发,激发波长范围与紫外LED芯片相匹配.在激发波长为350nm时,发射光谱中有两个发射峰,峰值分别位于410nm和570nm,对应于Eu~(2+)的4f65d1→4f7跃迁,是Eu~(2+)占据了基质中Sr~(2+)的十配位和六配位的两种不同的格位后,形成的两个发光中心.当Eu~(2+)的掺杂浓度为1mol%时,具有最大的发光强度,继续增加Eu~(2+)的浓度后,会出现浓度猝灭现象.通过将Eu~(2+)的掺杂浓度从0到0.01,可以使该荧光粉的CIE色坐标从(0.259 5,0.198 7)的蓝光区域逐渐移动到(0.324 5,0313 3)的白光区域.基于实验结果和理论分析计算表明,这种荧光粉是一种潜在的用近紫外光激发产生白光LED的荧光粉.  相似文献   

10.
采用溶剂热-高温固相法,合成了纳米晶Y2O2S∶Eu3+,Mg2+,Ti4+红色长余辉发光材料。通过XRD、TEM、荧光光谱对其进行表征。X射线衍射测试表明所制备的Y2O2S∶Eu3+,Mg2+,Ti4+纳米材料为单相,六方晶。透射电子显微镜(TEM)测试表明所制备的Y2O2S∶Eu3+,Mg2+,Ti4+纳米材料粒径小,分布集中。激发和发射光谱测试表明Eu3+离子能有效地掺入硫氧化钇基质中,并具有良好的发光性能。余辉测试表明其余辉颜色为红色,具有良好的余辉效果。  相似文献   

11.
The Ba2Mg(PO4)2:Eu2+, Mn2+ phosphor is synthesized by a co-precipitation method. Crystal phase, morphology, excitation and emission spectra of sample phosphors are analyzed by XRD, SEM and FL, respectively. The results indicate particles synthesized by a co-precipitation method have a smaller size in diameter than that synthesized by conventional solid-state reaction method. Emission spectra of BMP:Eu2+, Mn2+ phosphor show a broad blue and a broad yellow emission bands with two peaks at about 456 nm and 575 nm under 380 nm excitation. An overlap between Eu2+ emission band and Mn2+ excitation band proves the existence of energy transfer from Eu2+ to Mn2+. Emitting color of the BMP:Eu2+, Mn2+ phosphor could be tuned by adjusting relative contents of Eu2+ and Mn2+ owing to energy transfer formula. Therefore, BMP:Eu2+, Mn2+ may be considered as a potential candidate for phosphor for near-UV white LED.  相似文献   

12.
Novel long lasting phosphors SrMg2(PO4)2:Eu2+, SrMg2(PO4)2:Eu2+, Zr4+, SrMg2(PO4)2:Eu2+, Ho3+ and SrMg2(PO4)2:Eu2+, Ho3+, Zr4+ were synthesized by conventional solid-state reaction method. The luminescent properties were systematically characterized by X-ray diffraction, photoluminescent excitation and emission spectra, as well as thermoluminescence spectrum and decay curves. The XRD patterns indicated that the samples belonged to monoclinic phase and co-doping Eu2+, Ho3+ and Zr4+ ions had no effect on the basic crystal structure. These phosphors emitting purplish blue light is related to the characteristic emission of Eu2+. The afterglow time of Eu2+ activated SrMg2(PO4)2 can be greatly enhanced by the co-doping of Ho3+, Zr4+. After the 365 nm UV light excitation source switching off, the Sr0.92Mg1.95(PO4)2:Eu2+0.01, Zr4+0.05, Ho3+0.07 phosphorescence can be observed for more than 1013 s in the limit of light perception of dark-adapted human eyes (0.32 mcd/m2). Different kinds of TL peaks at 423, 448 and 473 K have appeared, and traps densities have increased compared with the Eu2+ single doped SrMg2(PO4)2 phosphor. By analyzing the TL curve the depths of traps were calculated to be 0.846, 0.896 and 0.946 eV, respectively, which suggested that the co-doping of Ho3+, Zr4+ improved the electron storage ability of material. Besides, the mechanism was discussed in this report.  相似文献   

13.
14.
Sr3Bi(PO4)3:Eu2+, Sr3Bi(PO4)3:Mn2+, and Sr3Bi(PO4)3:Eu2+, Mn2+ phosphors were synthesized by solid state reaction. The structure and luminescent characteristics were investigated by X-ray powder diffraction and fluorescent spectrophotometer. All samples have the structural type of eulytine. The excitation and emission spectra of Sr3Bi(PO4)3:0.01Eu2+ sample show characteristic bands of Eu2+ ions. Also, the excitation and emission spectra of Sr3Bi(PO4)3:0.06Mn2+ sample show characteristic bands of Mn2+ ions. The emission color of Sr3Bi(PO4)3:Eu2+, Mn2+ sample could be tuned through tuning the co-dopant concentration of Mn2+ ions. The decay times for the Eu2+ ions decrease with the increase of Mn2+ dopant concentration, but the energy transfer efficiency increases with the increase of Mn2+ dopant concentration. On the basis of the luminescent spectra and fluorescence decay curves, we confirm that the energy transfer process from the Eu2+ to Mn2+ ions takes place in the co-doped Sr3Bi(PO4)3 phosphor. Sr3Bi(PO4)3:Eu2+, Mn2+ sample shows the good thermostability. The emission intensity of the sample at 400 K is about 60% of the value at 300 K. These results show Sr3Bi(PO4)3:Eu2+, Mn2+ phosphors could be anticipated for UV-pumped white-light-emitting diodes.  相似文献   

15.
A green-emitting phosphor of Eu2+-activated Sr5(PO4)2(SiO4) was synthesized by the conventional solid-state reaction. It was characterized by photoluminescence excitation and emission spectra, and lifetimes. In Sr5(PO4)2(SiO4):Eu2+, there are at least two distinguishable Eu2+ sites, which result in one broad emission situating at about 495 nm and 560 nm. The phosphor can be efficiently excited in the wavelength range of 250–440 nm where the near UV (~ 395 nm) Ga(In)N LED is well matched. The dependence of luminescence intensities on temperature was investigated. With the increasing of temperature, the luminescence of the phosphor shows good thermal stability and stable color chromaticity. The luminescence characteristics indicate that this phosphor has a potential application as a white light emitting diode phosphor.  相似文献   

16.
A series of luminescent emission-tunable phosphors Ca8NaGd(PO4)6F2: Eu2+, Mn2+ have been prepared by a combustion-assisted synthesis method. The X-ray diffraction measurement results indicate that the crystal structure of the phosphor is a single phase of Ca8NaGd(PO4)6F2. The photoluminescence (PL) properties of Eu2+ and Mn2+-codoped Ca8NaGd(PO4)6F2 phosphors were also investigated. The phosphors can be efficiently excited by ultraviolet (UV) light and show a blue emission band at about 450 nm and a yellow emission band at about 574 nm, which originated from the Eu2+ ions and the Mn2+ ions, respectively. The efficient energy transfer from the Eu2+ ions to the Mn2+ ions was observed and its mechanism should be a resonant type via a nonradiative dipole–quadrupole interaction. A color-tunable emission in Ca8NaGd(PO4)6F2 phosphors can be realized by Eu2+  Mn2+ energy transfer. Our results indicate that the developed phosphor may be used as a potential white emitting phosphor for UV based white LEDs.  相似文献   

17.
RbCaGd(PO4)2 doped with Ce3+, Mn2+ was synthesized by the sol-gel method. The crystal structure and crystallographic location of Ce3+ in RbCaGd(PO4)2 were identified by Rietveld refinement. Powder X-ray diffraction (XRD) revealed that the structure of RbCaGd(PO4)2:Ce3+ compounds is hexagonal structure which is similar to that of hexagonal LnPO4 with the lattice constant of a = b = 7.005(57) Å, c = 6.352(05) Å, and V (cell volume) = 269.980 Å3. The photoluminescence behavior and emission mechanism were studied systematically by doping activators in the RbCaGd(PO4)2 host. The Mn2+ incorporated RbCaGd(PO4)2:Ce3+, Mn2+ compounds exhibited blue emission from the parity- and spin-allowed f-d transition of Ce3+ and orange-to-red emission from the forbidden 4T1  6A1 transition of Mn2+. The emission chromaticity coordinates of RbCaGd(PO4)2:0.10Ce3+, xMn2+ (x = 0.16, 0.25) are close to the white region due to an energy transfer process and the energy transfer mechanism from Ce3+ to Mn2+ in the RbCaGd(PO4)2 host was dominated by dipole-dipole interactions.  相似文献   

18.
Ba3MgSi2O8:Eu2+, Mn2+ phosphors were synthesized by the sol-gel method and high temperature solid-state reaction method, respectively. XRD (X-ray diffraction), FT-IR (Fourier transform infrared spectroscopy), PL (photoluminescence spectra), and PLE (photoluminescence excitation spectra) were measured to characterize the samples. Emission and excitation spectra of our Ba3MgSi2O8:Eu2+, Mn2+ phosphors monitored at 441, 515, and 614 nm are depicted in the paper. The emission intensities of 441 and 515 nm emission bands increase with increasing Eu2+ concentration, while the peak intensity of the 614 nm band increases with increasing Mn2+ concentration. We conclude that the 515 nm emission band is attributed to the 4f(6)5d transition of Eu2+ ions substituted by Ba2+ sites in Ba2SiO4. The 441 nm emission band originates from Eu2+ ions, while the 614 nm emission band originates from Mn2+ ions of Ba3MgSi2O8:Eu2+, Mn2+. Nano-crystalline Ba3MgSi2O8:Eu2+, Mn2+ phosphors prepared by the sol-gel method show higher color rendering and better color temperature in comparison with the samples prepared by high temperature solid-state reaction method.  相似文献   

19.
Rare earth-doped phosphates have attracted much attention in recent years because of their interesting optical applications. However, few studies have reported on optical properties of fillowite-like compounds. Eu2+ and Mn2+ singly doped and Eu2+/Mn2+-codoped Mg21Ca4Na4(PO4)18 phosphors were synthesized for the first time via combustion-assisted synthesis technique. The Eu2+-activated sample emits an intense blue light under 360 nm excitation, while the Eu2+/Mn2 + -codoped Mg21Ca4Na4(PO4)18 sample exhibits a broad blue emission band and a red emission band, resulting from Eu2+ and Mn2+, respectively. Energy transfer between Eu2+ and Mn2+ was discovered and the transfer efficiency was also estimated based on relative intensities of Eu2+ and Mn2+ emission. Thus, the relative strength of blue and red emission intensities could be tuned by varying the relative concentration of Eu2+ and Mn2+. Since the photoluminescence excitation spectra of the newly developed Mg21Ca4Na4(PO4)18:Eu2+, Mn2+ phosphors exhibit a strong absorption in the range of 250–400 nm, they are promising for producing UV-LED-based white LEDs.  相似文献   

20.
采用高温固相反应法合成了不同Eu3+掺杂浓度的Ba3Gd(PO4)3荧光粉。利用X射线衍射对产生的晶体结构进行了分析, 证实产物为纯相, Eu3+的引入没有导致晶体结构的改变。利用Van Uitert模型对5D0能级荧光的浓度猝灭行为进行了研究, 发现浓度猝灭是由于Eu3+间交换相互作用所导致。分析了5D0荧光发射的温度依赖, 给出了荧光温度猝灭行为符合横向穿越模型, 并通过非线性拟合获得了激活能。利用Eu3+的发射光谱和荧光衰减数据, 计算了5D07FJ辐射跃迁速率及荧光分支比, 同时得到了光学跃迁强度参数。  相似文献   

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