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1.
通过高温固相法制备了用于紫外激发白光LED的蓝绿色Ca7(SiO4)2Cl6∶Eu2+荧光粉,并对样品进行了XRD分析和发光性能测试。结果表明,合成的样品为单相Ca7(SiO4)2Cl6;在紫外光激发下,样品的发射谱包括418和502nm两个发射峰。分别监测这两个发射峰,得到了峰值位于290和360nm处的两个宽带激发谱,说明Eu2+离子在基质晶格中可能占有两个不同的格位。研究了Eu2+离子浓度对发光强度的影响,最佳掺杂浓度为0.75mol%。结果表明该荧光粉是一种较好的蓝绿色发光材料。  相似文献   

2.
Eu3+掺杂Gd2W2O9和Gd2(WO43纳米荧光粉发光性质研究   总被引:2,自引:0,他引:2       下载免费PDF全文
采用共沉淀法制备了不同Eu3+掺杂浓度的Gd2W2O9和Gd2(WO4)3纳米发光材料.通过对纳米材料样品的X射线衍射谱(XRD)和场发射扫描电镜(FE-SEM)照片的观察和分析,对样品的结构和形貌进行了表征.测量了各样品的发射光谱、激发光谱,计算了各样品的部分J-O参数和Eu3+5D0能级量子效率,绘制了不同基质中Eu3+发光的浓度猝灭曲线,对Eu3+掺杂的Gd2W2O9和Gd2(WO4)3纳米发光材料的光致发光性质进行了研究.实验结果证明,与较常见的Gd2(WO4)3:Eu一样,Gd2W2O9:Eu中Eu3+5D0→7F2跃迁的红色发光也能被395nm和465nm激发光有效激发,具有近紫外(蓝光)相对激发效率高,猝灭浓度大的优点,有潜力成为高效的近紫外(蓝光)激发白光LED用红色荧光粉材料.  相似文献   

3.
采用高温固相法合成了适合近紫外光、蓝光激发的K2ZnSiO4∶Eu3+红色荧光粉,研究了该荧光粉的发光特性。XRD结果显示,所合成的荧光粉主晶相为K2ZnSiO4。样品的激发光谱由O2-→Eu3+电荷迁移带(200~350nm)和Eu3+离子的特征激发峰(350~500nm)组成,最强峰位于396nm,次强峰位于466nm。在396nm和466nm激发下,样品均呈多峰发射,分别由Eu3+离子的5D0→7FJ(J=0,1,2,3,4)能级跃迁产生,其中619nm处峰值最大。增加Eu3+离子的掺杂浓度,荧光粉的发光逐渐增强。在实验测定的浓度范围内,未出现浓度猝灭现象。不同Eu3+浓度样品的色坐标均位于色品图红光区,非常接近NTSC标准。  相似文献   

4.
采用高温固相法在1 100 ℃下合成了Eu3+掺杂的CdxZn1-xO发光材料.采用X射线衍射对所合成样品的结构进行了表征.分析了不同浓度Cd2+的掺杂对于样品发光及激发峰位置的影响.通过对荧光光谱的测试,表明Cd2+的引入使得体系的禁带宽度变窄,并且通过Cd2+掺杂浓度的变化,可以对样品的激发光谱峰值在380~410 nm进行调制,样品的发光以520 nm处的宽带发射为主,并没有明显的Eu3+的特征发射,表明基质与Eu3+之间的能量传递并不有效.在加入Li+作为电荷补偿剂之后,出现了来自Eu3+的特征发射,相应的发射光谱的发射主峰位于609 nm.样品380~410 nm的激发峰范围覆盖了紫外LED芯片的输出波长.因此,这种荧光粉是一种可能应用在白光LED上的红色荧光粉材料.  相似文献   

5.
采用高温固相法在N2-H2还原气氛下合成了一系列Sr3(PO4)2∶Eu2+蓝色荧光粉,通过X射线衍射仪(XRD)、荧光光谱仪(PL)对荧光粉的晶体结构、激发和发射光谱进行了表征。结果表明:微量的Eu2+掺杂不会改变其晶体结构;Sr3(PO4)2∶Eu2+荧光粉在310~390nm范围内可以有效的被激发,激发峰位于359nm;发射光谱为主峰位于438nm宽带发射(带宽约为150nm),对应于Eu2+的4f65d1→4f7跃迁.通过高斯拟合发现,Eu2+至少占据了Sr3(PO4)2两种不同的Sr2+格位,形成两个发光中心(430和459nm).当Eu2+的掺杂浓度为7%时,其具有最大的发光强度,继续增大Eu2+的掺杂浓度,Sr3(PO4)2∶Eu2+的发射光谱会出现浓度猝灭现象,且其发射峰会随着铕离子浓度增加而发生红移。Sr3(PO4)2∶Eu2+荧光粉在近紫外区有着强而宽的吸收带,与近紫外LED芯片发射相匹配,相对发光强度是蓝色荧光粉BaMgAl10O17∶Eu2+(BAM)的1.3倍,是一种很有前途的白光LED用蓝色荧光粉材料。  相似文献   

6.
白光LED用红色荧光粉Gd2Mo3O9:Eu3+的制备及表征   总被引:9,自引:0,他引:9       下载免费PDF全文
利用Na2CO3作为助熔剂,采用高温固相反应方法制备了三价铕离子激活的Gd2Mo3O9红色荧光粉。利用XRD和荧光光谱,研究了助熔剂的量、制备时的温度以及激活剂Eu3+的浓度对荧光粉的晶体结构和发光性能的影响。测试结果表明,这种新型的荧光粉可以被紫外光280nm,近紫外光395nm和蓝光465nm有效激发,发射主峰位于613nm,并且证明Eu3+离子在晶体结构中占据了非反演对称中心的位置。395,465nm的吸收与目前广泛应用的紫外和蓝光LED芯片的输出波长相匹配。因此,这种荧光粉是一种可能应用在白光LED上的红色荧光粉材料。  相似文献   

7.
采用水热法制备了CaSnO3:Eu3+红色荧光粉,利用X射线粉末衍射、场发射扫描电镜和荧光光谱对CaSnO3:Eu3+粉末进行了表征.实验结果表明,这种新型的荧光粉可以被紫外光280 nm、近紫外光395 nm和蓝光465nm有效地激发,发射主峰位于614nm.光谱分析结果表明,Eu3+离子在晶体结构中占据了非反演对称中心的位置.395,465 nm的吸收与目前广泛应用的紫外和蓝光LED芯片的输出波长匹配.因此,这种荧光粉是一种可能应用在白光LED上的红色荧光材料.  相似文献   

8.
采用高温固相法在1100℃下合成了Eu3 掺杂的CdxZn1-xO发光材料。采用X射线衍射对所合成样品的结构进行了表征。分析了不同浓度Cd2 的掺杂对于样品发光及激发峰位置的影响。通过对荧光光谱的测试,表明Cd2 的引入使得体系的禁带宽度变窄,并且通过Cd2 掺杂浓度的变化,可以对样品的激发光谱峰值在380~410nm进行调制,样品的发光以520nm处的宽带发射为主,并没有明显的Eu3 的特征发射,表明基质与Eu3 之间的能量传递并不有效。在加入Li 作为电荷补偿剂之后,出现了来自Eu3 的特征发射,相应的发射光谱的发射主峰位于609nm。样品380~410nm的激发峰范围覆盖了紫外LED芯片的输出波长。因此,这种荧光粉是一种可能应用在白光LED上的红色荧光粉材料。  相似文献   

9.
使用共沉淀法制备不同掺杂浓度的CeO2∶Eu3+的荧光粉,并利用XRD,激发和发射光谱对其光学性质进行了研究。PL激发光谱中出现300~400nm的源于基质CeO2的强吸收宽带以及较弱的Eu3+的7 F0-5 D2(467nm)吸收峰。由于Ce4+和Eu3+半径十分接近,因而Eu3+在CeO2中具有较高的固溶度。当高浓度Eu3+掺杂CeO2时,出现了7F0-5 D2(467nm)吸收峰的极大增强。在467nm激发下获得了Eu3+的5 D0—7 F1(592nm)和5 D0—7 F2(612nm)跃迁的特征红光发射。与电荷迁移带激发下获得的红光相比,在467nm蓝光激发下获得的红光强度是其5倍。7 F0—5 D2(467nm)的强电子吸收与蓝光LED芯片的输出波长相匹配,在蓝光激发下获得明亮的红光发射。因此,Eu3+掺杂CeO2荧光粉是一种有潜力的用于白光LED的红色荧光粉。  相似文献   

10.
稀土掺杂发光材料一直是科研领域研究的热点,被广泛应用于白光LED、温度传感、显示显像、新能源和激光等领域。基质的结构对于稀土离子光致发光特性有非常重要的影响,在众多发光基质材料中,硼酸盐具有透光范围宽、光学损伤阈值高、较好的热稳定性和化学稳定性等优点。碱土-稀土金属硼酸盐Sr3Y2(BO3)4具有出色的光学性能,对其发光性能的研究具有重要意义。稀土离子Eu3+具4f6电子层,是一种典型的下转换发光中心离子,常被选作红色发光材料的激活剂。Dy3+具4f9电子层,也是一种典型的下转换发光中心离子,在紫外光激发下,在蓝色光区和橙色光区有较强的荧光发射。采用高温固相法合成了Sr3Y2(BO3)4∶Eu3+/Dy3+荧光粉,通过XRD和SEM对样品的结构和形貌进行了表征,XRD结果表明,1 000 ℃烧结5 h,H3BO3过量20%为最佳制备条件,且少量的Eu3+和Dy3+掺杂并未改变Sr3Y2(BO3)4的晶格结构。SEM图像表明Sr3Y2(BO3)4基质的平均晶粒尺寸为2~4 μm,10%Eu3+单掺和5%Eu3+/5%Dy3+双掺样品与基质Sr3Y2(BO3)4的SEM图像相比,形貌和尺寸并没有发生明显的改变。Sr3Y2(BO3)4∶Eu3+荧光粉的发光结果表明,分别在395和466 nm激发下,浓度为5%,10%和15%的Eu3+单掺Sr3Y2(BO3)4荧光粉的主要发光位于593和613 nm的红光发射,峰强度随着Eu3+浓度的增加呈现先增加后降低的变化形式,掺杂浓度为10%时发光强度最大,说明存在浓度猝灭现象。色坐标结果显示,激发波长由395 nm变化到466 nm,Sr3Y2(BO3)4∶Eu3+荧光粉的发光颜色从橙红色向红色转变。引入Dy3+后,Sr3Y2(BO3)4∶Eu3+/Dy3+样品的发射光谱出现Dy3+的486 nm的蓝光发射(4F9/2→6H15/2)和576 nm的橙光发射(4F9/2→6H13/2),并且随着Dy3+浓度的增加,对Eu3+的5D0→7F1, 2, 3, 4跃迁有抑制作用。色坐标结果显示通过调整掺杂离子Eu3+和Dy3+的比例可实现Sr3Y2(BO3)4∶Eu3+/Dy3+荧光粉的颜色从红色区域向橙色区域转变,说明其在显示方面具有良好的应用前景。  相似文献   

11.
任艳东  吕树臣 《物理学报》2011,60(8):87804-087804
采用化学共沉淀法制备了Eu3+掺杂摩尔分数不同、煅烧温度不同的SrWO4:Eu3+系列发光粉体, 所制备的粉体均具有Eu3+特征的强室温红光荧光发射. 通过调节煅烧温度和掺杂摩尔分数来调控近紫外和蓝光吸收强度, 进而调控用395 nm的近紫外光和465 nm的蓝光激发样品所得红光发光强度. 研究结果表明, 所制备的SrWO4:Eu3+红光荧光粉可以被紫外和蓝光发光二极管有效激 关键词: 稀土掺杂 4:Eu3+')" href="#">SrWO4:Eu3+ 光致发光 白光发光二极管  相似文献   

12.
Ca2GeO4:Eu3+ phosphors were synthesized by the solid state method. The ultraviolet and vacuum ultraviolet excited photoluminescence properties were investigated in detail. It revealed that the emission of Ca2GeO4:Eu3+ comprised two parts: the red emission of Eu3+ and host defect emission in 330-550 nm. Ca2GeO4:Eu3+ presented intense excitation intensity at 163-200 and 466 nm, which suggested the potential applications in plasma display panels and light emitting diodes. The excitation spectra were studied to identify the photoluminescence mechanisms of Ca2GeO4:Eu3+. First principles calculation within the local density approximation of the density functional theory was applied to calculate the electronic structure and linear optical properties of Ca2GeO4.  相似文献   

13.
The spectroscopic properties in UV-excitable range for the phosphors of Sr3La2(BO3)4:RE3+ (RE3+=Eu3+, Ce3+, Tb3+) were investigated. The phosphors were synthesized by conventional solid-state reactions. The photoluminescence (PL) spectra and commission international de I'Eclairage (CIE) coordinates of Sr3La2(BO3)4:RE3+ were investigated. The f-d transitions of Eu3+, Ce3+ and Tb3+ in the host lattices are assumed and corroborated. The PL and PL excitation (PLE) spectra indicate that the main emission wavelength of Sr3La2(BO3)4:Eu3+ is 611 nm, and Sr3La2(BO3)4:Ce3+ shows dominating emission peak at 425 nm, while Sr3La2(BO3)4:Tb3+ displays green emission at 487, 542, 582 and 620 nm. These phosphors were prepared by simple solid-state reaction at 1000 °C. There are lower reactive temperature and more convenient than commercial phosphors. The Sr3La2(BO3)4:Tb3+ applied to cold cathode fluorescent lamp was found to emit green light and have a major peak wavelength at around 542 nm. These phosphors may provide a new kind of luminescent materials under ultraviolet excitation.  相似文献   

14.
Strontium aluminate phosphors are ideal for luminescent infrastructure materials. Their brightness and persistent glow time are much higher than previously used sulphide phosphors. Strontium aluminates prepared by the sol–gel and combustion methods are compared with commercially available strontium aluminate. High luminescent efficient SrAl2O4:Eu2+,Dy3+ pulsed laser deposited (PLD) thin films were also produced using the commercially available powder. Photoluminescence (PL) degradation studies showed that the phosphor intensity decreased about 20% over a period of 2 weeks under ultraviolet (UV) irradiation. Auger electron spectroscopy (AES) and X-ray photoelectron spectroscopy (XPS) showed that cathodoluminescence (CL) degradation is due to the formation of SrO due to electron stimulated surface reactions. The light output mechanism of the phosphor is also discussed in more detail.  相似文献   

15.
Er3+ doped and Yb3+/Er3+ co-doped Y4Al2O9 phosphors are prepared by the sol-gel method. The effect of dopant concentration on the structure and up-conversion properties is investigated by X-ray diffraction (XRD) and photoluminescence, respectively. XRD pattern indicates that the sample structure belongs to monoclinic. Under 980 nm excitation, the green and red up-conversion emissions are observed and the emission intensities depended on the Yb3+ ion concentration. The green up-conversion emissions decrease with the increase of Yb3+ concentration, while red emission increases as Yb3+ concentration increases from 0 to 8 at% and then decreases at high Yb3+ concentration. The mechanisms of the up-conversion emissions are discussed and results shows that in Er3+ and Yb3+/Er3+ co-doped system, cross-relaxation (CR) and energy transfer (ET) processes play an important role for the green and red up-conversion emissions.  相似文献   

16.
5 mol% of Pr3+ and Tm3+ ions activated calcium gadolinium tungstate (Ca2Gd2W3O14) phosphors were synthesized by traditional solid state reaction method. Crystalline phase structure was identified from the X-ray diffraction (XRD) profiles. From the scanning electron microscopy (SEM) images, we have observed the agglomeration of the particles, and average grain size is around 40-300 nm. Using the energy dispersive X-ray analysis (EDAX) and Fourier transform infrared (FTIR) spectra, identified the elements and functional groups present in the prepared phosphors. The emission spectrum of Pr3+: Ca2Gd2W3O14 powder phosphors have shown an intense red emission at 615 nm with the excitation wavelength λexci=450 nm and thus these red color emitting powder phosphors are used as one of the components in the preparation of WLEDs. The excitation spectrum of Tm3+: Ca2Gd2W3O14 powder phosphor has shown a ligand to metal charge transfer (W-O) band (LMCT) within the WO42− group. Emission spectrum of Tm3+: Ca2Gd2W3O14 phosphors have shown blue emissions at 453 nm (1D23F4).  相似文献   

17.
A series of Eu2+-activated Ba2Mg(BO3)2 yellow phosphors were prepared by a high temperature solid-state reaction. The phosphor emits intense yellow light under near ultraviolet excitation. Large Stokes shift can be attributed to the asymmetric nature of the Eu site and the lack of rigidity in the host. The concentration self-quenching mechanism of Ba2Mg(BO3)2:Eu2+ is d-d interaction and the critical transfer distance is calculated to be about 12.29 Å. Prototype light-emitting diodes were fabricated by coating the Ba2Mg(BO3)2:0.07Eu2+ phosphor onto ∼370 nm-emitting InGaN chips. The LEDs exhibit intense yellow-emitting under a forward bias of 20 mA. The results indicate that Eu2+-activated Ba2Mg(BO3)2 is a candidate as a yellow component for fabrication of near-UV white light-emitting diodes.  相似文献   

18.
LiCaBO3:M (M=Eu3+, Sm3+, Tb3+, Ce3+, Dy3+) phosphors were synthesized by a normal solid-state reaction using CaCO3, H3BO3, Li2CO3, Na2CO3, K2CO3, Eu2O3, Sm2O3, Tb4O7, CeO2 and Dy2O3 as starting materials. The emission and excitation spectra were measured by a SHIMADZU RF-540 UV spectrophotometer. And the results show that these phosphors can be excited effectively by near-ultraviolet light-emitting diodes (UVLED), and emit red, green and blue light. Consequently, these phosphors are promising phosphors for white light-emitting diodes (LEDs). Under the condition of doping charge compensation Li+, Na+ and K+, the luminescence intensities of these phosphors were increased.  相似文献   

19.
Low temperature quenching and high efficiency CaSc2O4:Ce3+ (CSO:Ce3+) phosphors co-doped with Tm3+, La3+ and Tb3+ ions were prepared by a solid state method and the phase-forming, morphology, luminescence and application properties of these phosphors were investigated. The results showed that co-doping of Tm3+, La3+ and Tb3+ ions can improve the luminescence properties and decrease temperature quenching of CSO:Ce3+ phosphor remarkably. High efficiency green-light-emitting diodes were fabricated with the prepared phosphors and InGaN blue-emitting (∼460 nm) chips. The good performances of the green-light-emitting LEDs made from co-doped CSO:Ce3+ phosphors confirm the luminescence enhancement and indicate that Tm3+, La3+ and Tb3+ co-doped CSO:Ce3+ phosphors are suitable candidates for the fabrication of high efficiency white LEDs.  相似文献   

20.
A series of phosphors with the composition Y3−xMnxAl5−xSixO12 (x=0, 0.025, 0.050, 0.075, 0.150, 0.225, 0.300) were prepared with solid state reactions. The X-ray powder diffraction analysis of samples shows that the substitution of Mn2+ and Si4+ does not change the garnet structure of phosphors, but makes the interplanar distance decrease to a certain extent. The emission spectra show that Mn2+ in Y3Al5O12 emits yellow-orange light in a broad band. With the increment of substitution content, the emission intensity of the phosphors increases firstly then decreases subsequently, and the emission peak moves to longer wavelength. Afterglow spectra and decay curves show that all the Mn2+ and Si4+ co-doped samples emit yellow-orange light with long afterglow after the irradiation of ultraviolet light. The longest afterglow time is 18 min. Thermoluminescence measurement shows that there exist two kinds of traps with different depth of energy level and their depth decreases with the increment of substitution content.  相似文献   

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