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1.
以NH3·H2O-NH4HCO3混合溶液为复合沉淀剂,制备了LaAlO3:Eu3+纳米晶体.通过X射线衍射、扫描电镜和透射电镜对产物进行了表征,用荧光光度计测试了样品的三维荧光光谱、激发光谱和发射光谱.结果表明:前驱沉淀物经800℃焙烧处理2h,制备出球型形貌,颗粒分散性好、尺寸约为40nm的立方相LaAlO3纳米晶.由三维荧光光谱确定了LaAlO3:Eu3+的最佳监测波长和激发波长,在395nm波长光的激发下观察到纳米LaAlO3中Eu3+的591nm(5D0-7F1)和613nm(5D0-7F2)特征发射谱,磁偶极跃迁5D0-7F1的发射峰强度要比电偶极跃迁5D0-7F2更强,而且这种趋势随着焙烧温度的升高明显增强,说明由该法制备的纳米LaAlO3中Eu3+离子占据的位置具有高的对称性.  相似文献   

2.
采用Pechini法合成了白光LED用红色荧光粉La1.9-xMoO6:0.10Eu3+,xLi+(x=0,0.10,0.20,0.25),并对样品分别进行了X射线衍射(XRD)、扫描电子显微镜(SEM)、电子能谱(EDX)以及荧光光谱(PL)等技术手段分析。 PL光谱显示该荧光粉可被近紫外光(395 nm)和蓝光(466 nm)有效激发,产生616和623 nm强的红光发射,归属于Eu3+5D07F2电偶极跃迁。该荧光粉与近紫外LED芯片(370~410 nm)和蓝光LED芯片(450~470 nm)均匹配良好,具有潜在的商业应用价值。 共掺Li+离子作为敏化剂能显著提高荧光粉的发光强度,且最优掺杂量为x=0.20。  相似文献   

3.
通过原位反应合成法成功合成了一种新型水溶性的磁性荧光复合纳米粒子Fe3O4@SiO2@ZrO2:Tb3+,并通过扫描电子显微镜(SEM)、X射线粉末衍射仪(XRD)、红外光谱仪(FT-IR)、磁性测试仪和荧光(PL)光谱对其形貌、尺寸、相组成、磁性和荧光性能进行了表征。 结果表明,核(Fe3O4@SiO2)壳(ZrO2:Tb3+)结构组成的磁性荧光复合纳米粒子具有超顺磁性,其饱和磁化强度达到36 emu/g,并且在494 nm(5D47F6)、549 nm(5D47F5)、587 nm(5D47F4)和625 nm(5D47F3)处具有4个Tb3+特有的荧光发射光谱带峰值。 磁性荧光双功能的复合纳米粒子在生物医学领域具有潜在的应用价值。  相似文献   

4.
采用水热法制备了均匀、单分散的BaF2∶Tb3+纳米粒子,并采用离子交换法制备了水杨酸钠敏化的BaF2∶Tb3+纳米粒子(SS-BaF2∶Tb3+)。 系统地研究了样品的结构、形貌和光致发光性质。 结果表明,监测Tb3+离子在547 nm的5D47F5跃迁,SS-BaF2∶Tb3+纳米粒子获得了从200 nm到385 nm波长范围宽的激发带;激发SS的π-π*电子跃迁吸收,由于SS到Tb3+的能量传递(“天线效应”),SS-BaF2∶Tb3+纳米粒子产生了增强的Tb3+离子绿光发射;敏化纳米粒子中Tb3+离子光致发光寿命比未敏化纳米粒子中Tb3+离子寿命长。  相似文献   

5.
采用高温固相烧结法成功制备了Ba5-3x/2B4O11xEu3+(x=0.02~0.22)荧光粉,利用XRD和SEM等对荧光粉进行了结构和形貌表征。 在激发波长为393 nm的条件下,发射峰(596、621、657和706 nm)与Eu3+5D0-7FJ(J=1,2,3,4)电子跃迁相对应,其中621 nm最强发射峰由Eu3+离子5D07F2电偶极跃迁造成。 文章还研究了Eu3+掺杂浓度对Ba5-3x/2B4O11xEu3+发光性能的影响,结果表明,荧光粉的发光强度随着Eu3+掺杂量的增加呈现先增大后减小的趋势,Eu3+最佳掺杂量为0.16。  相似文献   

6.
采用水热法合成了5个稀土配合物[Sm2(bdbc)2(phen)4](1)和[Ln(bdbc)(phen)(H2O)][Ln=Eu(2), Gd(3), Tb(4), Dy(5), bdbc=(2-羧基苯氧基)苯-1,2-二羧酸根, phen=1,10-邻菲啰啉]. 配合物1是双核分子, 通过氢键和C—H…π作用进一步构筑成一维超分子结构; 配合物2~5是同构的一维双螺旋结构, 通过氢键和C—H…π作用进一步构筑成三维超分子结构. 配合物1, 2, 4和5呈现了Sm3+, Eu3+, Tb3+和Dy3+离子的特征发射, 分别对应于Sm3+离子的4G5/26HJ/2(J=5, 7, 9)、 Eu3+离子的5D07FJ(J=1—4)、 Tb3+离子的5D47FJ(J=6, 5, 4, 3)和Dy3+离子的4F5/26HJ/2(J=15, 13)跃迁. 对配合物4的荧光性质进行了表征, 结果表明, 配合物4可用作荧光探针以检测阳离子和苯甲醛.  相似文献   

7.
我们合成了六种Eu2+激活的碱土金属氟卤化物MFX:Eu2+(M=Ca、Sr或Ba;X=Cl、Br或I)。研究了它们的荧光发射光谱和激发光谱,讨论了Eu2+离子的跃迁发射随基质晶体组成和结构变化的规律。根据晶体场理论,按照C4v点对称性,计算得到在MFCl:Eu2+(M=Ca、Sr或Ba)晶体中Eu2+离子的4?65d1激发态能级分裂的数值。  相似文献   

8.
利用稳态和瞬态光谱方法研究了不同铕离子发光体系中各种因素对铕离子发光性质的影响.通过吸收和激发光谱的变化分析了稀土离子Gd3+对Eu3+增敏机理,并从荧光衰减动力学角度证明了主配体噻吩甲酰三氟丙酮(TTA)、协配体邻啡咯啉(Phen)、稀土离子Gd3+和表面活性剂TX-100对铕离子发光的增敏作用.4种发光体系Eu3+/Gd3+/TTA/Phen/TX-100,Eu3+/TTA/Phen/TX-100,Eu3+/Gd3+/TTA/Phen和Eu3+/Gd3+/TTA/TX-100中铕离子5D0态的发光寿命依次为980>670>400>260μs,而且存在铕离子5D15D0的传能过程.在发光越强的体系中,5D1的衰减越慢,相应地5D0的上升时间也就越长.研究结果表明,在最佳发光体系中既存在分子内的能量转移,又存在分子间的能量传递.  相似文献   

9.
本文研究了Eu2+离子在MyAlxBOy+3/2(1+x)(M=Ca,Sr,Ba)基质中的发光性质及磷和卤素对发光的影响。 采用以H2和N2混合气体为还原气氛在高温下进行固相反应的方法合成了一系列磷光体。发现,在CaAlxBO2.5+3/2x基质中,当X在0.5~2的范围内时及在SryAl2BO4 6+基质中,当y在2~6的范围时掺入的Eu3+不能被H2还原为Eu2+。其他Eu2+激活的磷光体一般都产生f~d跃迁的宽带发射,发射峰的波长随着基质组成的不同可在400~600nm的区间的变化。  相似文献   

10.
稀土离子Tb3+被视为当前绿色荧光材料中最具潜力的激活剂之一.采用高温固相法制备了新型绿色荧光粉β-KMg(PO3)3:Tb3+,其在紫外光区域具有强的f-f跃迁激发峰,呈现出较高的荧光量子产率(90.74%),且色度坐标与商用绿色荧光粉接近,其发射峰源于Tb3+5D4-7FJ (J=6, 5, 4, 3)跃迁发射; Tb3+占据Mg2+格位,由于电荷差而产生的缺陷被热释光验证,多种深度陷阱能级的存在使得该荧光粉具备优异的热稳定性.更重要的是,β-KMg(PO3)3:Tb3+呈现出优异的应力发光特性,在应力刺激下陷阱能级中的电子及空穴分别被释放回Tb3+的激发态及基态,实现Tb3+5D3-  相似文献   

11.
Eu-doped ZnO nanoneedles with different doping concentrations were prepared via the facile hydrothermal method.The crystal structure,morphology and photoluminescence property of the ZnO nanoneedles were characterized by X-ray diffraction(XRD),scanning electron microscopy(SEM),X-ray photoelectron spectroscopy(XPS),photoluminescence spectroscopy(PL) and Raman spectroscopy.The results show that the europium ions are incorporated into the crystal lattice of ZnO matrix in trivalent ions.The nanoneedles are 2-3 μm in length and 100 nm in the tip diameter.PL and Raman measurements indicate that higher Eu^3+ doping concentration may destroy the crystallization of the nanoneedles and decrease the ratio of IUV/IDLE,which is mainly due to the more defects in the doped ZnO nanoneedles.And the characteristic red emissions of Eu^3+ ions are found by the PL spectroscopy with the Eu^3+doping concentration increasing,which are attributed to the ^5D0→^7F0,^5D0→^7F1 and ^5D0→^7F2 transitions.  相似文献   

12.
The 5D07F0-2 emission of Eu3+ in cordierite is reported. Fluorescence line-narrowed emission by the 5D07F0 transition was used to study local structure around the Eu3+ ion in cordierite glass. It was found that the Eu3+ ion forms quasi-molecular complexes with the non-bridging oxygen, enabling the FLN data to be accounted for in terms of a single non-random distribution of crystal field strengths.  相似文献   

13.
The effect of Zn2+ ions codoped on the upconversion emission of Er3+ ions in Er:LiNbO3 crystal under different excitation wavelength was reported.The upconversion emission spectra of Zn/Er:LiNbO3 follo...  相似文献   

14.
Three novel lanthanide complexes [Ln(3,4-DEOBA)3phen]2[Ln=Eu(1), Tb(2), Dy(3); 3,4-DEOBA=3,4- diethoxybenzoate; phen=1,10-phenanthroline] were synthesized and characterized by elemental analysis, molar conductance, X-ray diffraction and infrared spectrometry. The luminescence spectra of complexes 1 and 2 show the characteristic emission of Eu3+ ion(5D07F0-3) and Tb3+ ion(5D47F6-3). The thermal decomposition mechanism of the title complexes and the analysis of the evolved gases were investigated by thermogravimetry/differential scanning calorimetry-Fourier transform infrared(TG/DSC-FTIR) technology. The results indicate the complexes are thermally stable. In the thermal decomposition of the complexes, phen molecules lost firstly, and then 3,4-DEOBA ligand decomposed into H2O, CO2 and other gaseous molecules. Besides, several gaseous organic fragments were also detected. The heat capacities of complexes 1―3 were measured by DSC in a temperature range of 263.15―340.15 K. Based on the fitted polynomial and thermodynamic equations, the smoothed heat capacities and thermodynamic functions of the three complexes were calculated. The study on biological activity showed that the complexes exhibited good antibacterial activity against Candida albicans, Staphylococcus aureus and Escherichia coli.  相似文献   

15.
Single crystal Dy3+ doped YNbO4phosphors were prepared via a high-temperature high-pressure hydrothermal procedure. Under excitation at 270 nm, the Dy3+-doped YNbO4 phosphor shows bright white emission, which is composed of two strong bands at 492 and 576 nm corresponding to the characteristic 4F9/2→6H15/2 and aF9/2→6H13/2 transitions of Dy3+, respectively. The dominant band was observed at 352 nm, which corresponds to the 6H15/2→6p7/2 transition of Dy3+. Nearly white light was achieved at 2ex 270, 310 and 388 nm and the CIE(International Commission on Illumination) values were (0.3135, 0.3421), (0.3088, 0.3380) and (0.3146, 0.3296), respectively.  相似文献   

16.
NnO2:xEu3+(x=O, 1%, 3%, 5%, molar fraction) fibers were synthesized by electrospinning technology. The size of the as-prepared fibers is relatively uniform and the average diameter is about 200 nm with a large draw ratio. The as-prepared Eu3+ doped SnO2 nanofibers have a rutile structure and consist of crystallitc grains with an average size of about 10 nm. A slight red shift of the A1gand Bag vibration modes and an additional peak at 288 nm were observed in the Raman spectra of the nanofibers. The energies of bandgaps of the SnO2 nanofiber with Eu doping of 1% and 3% are 2.64 eV, and the energy of bandgap is 2.94 eV with Eu doping of 5%(molar fraction). There is only orange emission(5D0→7F1 magnetic dipole transition) for Eu doped SnO2 nanofibers, and no red emission could be observed. The orange emission upon indirect excitation splits into three peaks and the peak intensity at the excitation wavelength of 275 nm is higher than that at the excitation wavelength of 488 nm.  相似文献   

17.
A novel series of color-tunable single-phased phosphors La1-x-yPO4:xEu3+/yTb3+(x=0, 0.01, 0.02, 0.03, 0.04, 0.05; y=0, 0.05, 0.10, 0.15, 0.20) was synthesized via microwave-assisted co-precipitation method with diammonium hydrogen phosphate as precipitant. The morphology, crystal structure and photoluminescence properties of the as-prepared samples were characterized by means of X-ray diffraction(XRD), scanning electron microscopy(SEM) and fluorescence spectrophotometer. The results reveal that the as-synthesized samples calcined at 1100℃ display spherical morphology with uniform distribution. Upon excitation with 350 nm ultraviolet radiation, the LaPO4:Eu3+/Tb3+ phosphors showed a green light peaking at 543 nm assigned to the characteristic 5D4-7F5 emission of Tb3+ and a red light peaking at 591 nm corresponding to the characteristic 5D0-7F1 emission of Eu3+ simultaneously. For the Eu3+/Tb3+ co-activated phosphors, Tb3+ acts as an efficient sensitizer to enhance the emission intensity of Eu3+ ions. The energy transfer mechanism and the emission color tunability of LaPO4:Eu3+/Tb3+ have been studied. The results indicate that a color-tunable luminescence(from green to white to red) can be achieved by adjusting the Eu3+/Tb3+ doping ratio in the LaPO4 host matrix.  相似文献   

18.
CaSiO3:Eu0.08^3+Bi0.002^3+ with a monoclinic perovskite structure was synthesized by using sol-gel method, and its luminescence characteristics were investigated. From the excitation spectrum, it can be seen that the main peaks located at 238,396,415,437 and 359 nm correspond to the charge-transfer band of Eu^3+-O^2- , the absorption transitions of ^7F0.1→^3L6, ^7F0→^5D3, ^7F1→^5D3 of Eu^3+ ions, and ^3P1→^1S0 of Bi^3+ ions, respectively. When the samples were excited with a light of wavelength 359 or 395 nm, it can be seen from the emission spectrum that the electronic dipole transition located at 609 nm corresponding to ^5D0→^7F2 of Eu^3+ ions was stronger than the magnetic dipole transition located at 587 nm corresponding to ^5D0→^7F1 of Eu^3+ ions, which shows that more Eu^3+ ions were located in nonreversion center lattices. The energy transfer from Bi^3+ ions to Eu^3+ ions in the phosphor was also discussed. The results show that Eu^3+ ions could be well sensitized by ^3+ions, and the energy-transfer pattern between Bi^3+ ions and Eu^3+ ions was resonance energy transfer.  相似文献   

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