24 resultados para LAPO4-EU
Resumo:
Fine particle AlPO4, LaPO4 and KTiOPO4 have been prepared by the flash combustion of aqueous solutions containing metal nitrate, ammonium hydrogen phosphate, ammonium nitrate or ammonium perchlorate and carbohydrazide or tetraformal trisazine. When rapidly heated at 400 °C, the solution containing the redox mixtures ignites to undergo self-propagating, gas-producing, exothermic reactions. Formation of crystalline phosphates was confirmed by powder X-ray diffraction patterns and IR spectra. The metal phosphates formed are fine and have 20�78 m2 g?1 surface area.
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The hexagonal and monoclinic LaPO4:Eu3+ nanorods can be selectively synthesized through a simple hydrothermal method by only adjusting the reaction temperature. Hexagonal and monoclinic LaPO4:Eu3+ nanorods can be prepared at 120 and 180 degrees C, respectively. The phase conversion of LaPO4:Eu3+ under different temperatures is investigated in detail. Moreover, the influence of the temperature on the intensity and the shift of the peaks of the excitation and emission spectra is discussed, and the decay lifetime of the Eu3+ ions of the sample obtained at different temperature also have been investigated in this paper.
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Lanthanum phosphate (LaPO4) nanostructures with different morphologies were prepared by a facile solution-precipitation process. The effect of different reaction conditions on the morphology of nanostructures was studied. When the molar ratio of La3+:H3PO4 was around 1 : 2, 1 : 20, 1 : 100, and 1 : 200, four different morphologies, such as near-spherical, snowflake-like, star-shaped, lens-like nanostructures and short nanorods, were obtained, respectively. Meanwhile, similar shapes developed when the molar ratio of H3PO4 to ionic surfactants, such as SDS and CTAB, was varied. In addition, Eu3+ doped and Ce3+/Tb3+ co-doped LaPO4 nanostructures showed morphology evolution similar to undoped LaPO4 nanostructures. The optical properties of these doped LaPO4 were also characterized.
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LaPO4:Ce3+, Tb3+ nanoparticles were prepared by the reverse microemulsion with functional monomer, methyl methacrylate (MMA) as oil phase, and LaPO4:Ce3+, Tb3+/poly(methyl methacrylate) (PMMA) nanocomposite was obtained via polymerization of MMA monomer. The nanoparticles and nanocomposite have been well characterized by XRD, SEM, TEM, UV/vis spectrum, photoluminescence excitation and emission spectra and luminescence decays. The obtained solid nanocomposite LaPO4:Ce3+, Tb3+/PMMA is highly transparent and exhibits strong green photoluminescence upon UV excitation, due to the integration of luminescent LaPO4:Ce3+, Tb3+ nanoparticles. The luminescent lifetime of Tb3+ is determined to be 1.25 ms in the nanocomposite. (C) 2009 Elsevier Inc. All rights reserved.
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Ce3+ and/or Tb3+ doped LaPO4 nanofibers and microbelts have been prepared by a combination method of sol-gel process and electrospinning. X-ray diffraction (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM), high-resolution transmission electron microscopy (HRTEM), photoluminescence (PL), low voltage cathodoluminescence (CL) and time-resolved emission spectra as well as kinetic decays were used to characterize the resulting samples. SEM and TEM results indicate the as-formed precursor fibers and belts are smooth. and the as-prepared nanofibers and microbelts consist of nanoparticles. The doped rare-earth ions show their characteristic emission under ultraviolet excitation, i.e. Ce3+ 5d-4f and Tb3+ D-5(4)-F-7(j) (J = 6-3) transitions, respectively. The energy transfer process from Ce3+ to Tb3+ in LaPO4:Ce3+, Tb3+ nanofibers was further studied by the time-resolved emission spectra.
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Monodisperse rare-earth ion (Eu3+, Ce3+, Tb3+) doped LaPO4 particles with oval morphology were successfully prepared through a facile solvothermal process without further hear treatment. X-ray diffraction (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM), X-ray photoelectron spectra (XPS), Fourier transform infrared spectroscopy (FT-IR), photoluminescence (PL) spectra and the kinetic decays were performed to characterize these samples. The XRD results reveal that all the doped samples are well crystalline at 180 degrees C and assigned to the monoclinic monazite-type structure of the LaPO4 phase. It has been shown that all the as-synthesized samples show perfectly oval morphology with narrow size distribution. The possible growth mechanism of the LapO(4):Ln has been investigated as well.
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LaPO4: Ce3+ and LaPO4: Ce3+, Tb3+ phosphor layers have been deposited successfully on monodispersed and spherical SiO2 particles of different sizes ( 300, 500, 900 and 1200 nm) through a sol - gel process, resulting in the formation of core - shell structured SiO2@ LaPO4: Ce3+/ Tb3+ particles. X-ray diffraction (XRD), Fourier transform infrared spectroscopy (FT-IR), scanning electron microcopy (SEM), transmission electron microscopy (TEM), and general and time-resolved photoluminescence (PL) spectra as well as lifetimes were used to characterize the resulting SiO2@ LaPO4: Ce3+/ Tb3+ samples. The XRD results demonstrate that the LaPO4: Ce3+, Tb3+ layers begin to crystallize on the SiO2 templates after annealing at 700 degrees C, and the crystallinity increases on raising the annealing temperature. The obtained core - shell phosphors have perfectly spherical shape with a narrow size distribution, non-agglomeration, and a smooth surface. The doped rare-earth ions show their characteristic emission in the core - shell phosphors, i.e. Ce3+ 5d - 4f and Tb3+5D4 - F-7(J) (J = 6 - 3) transitions, respectively. The PL intensity of the Tb3+ increased on increasing the annealing temperature and the SiO2 core particle size.
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A simple, efficient and quick method has been established for the synthesis of CePO4:Tb nanorods and CePO4:Tb/LaPO4 core/shell nanorods via ultrasound irradiation of inorganic salt aqueous solution under ambient conditions for 2 h. The as-prepared products were characterized by means of powder x-ray diffraction (PXRD), transmission electron microscopy (TEM), high-resolution transmission electron microscopy (HRTEM), selected area electron diffraction ( SAED), x-ray photoelectron spectroscopy (XPS), photoluminescence (PL) spectra and lifetimes. TEM micrographs show that all of the as-prepared cerium phosphate products have rod-like shape, and have a relatively high degree of crystallinity and uniformity. HRTEM micrographs and SAED results prove that these nanorods are single crystalline in nature. The emission intensity and lifetime of the CePO4:Tb/LaPO4 core/shell nanorods increased significantly with respect to those of CePO4: Tb core nanorods under the same conditions. A substantial reduction in reaction time as well as reaction temperature is observed compared with the hydrothermal process.
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Rare-earth ion (Eu3+, Tb3+, Ce3+)- doped LaPO4 nanocrystalline thin films and their patterning were fabricated by a Pechini sol-gel process combined with soft lithography on silicon and silica glass substrates. X-Ray diffraction (XRD), Fourier transform infrared spectroscopy (FT-IR), thermogravimetric and differential thermal analysis (TG-DTA), atomic force microscopy (AFM), scanning electron microcopy (SEM), optical microscopy, absorption and photoluminescence (PL) spectra as well as lifetimes were used to characterize the resulting films. The results of XRD indicate that the films begin to crystallize at 700 degreesC and the crystallinity increases with increasing annealing temperature. The morphology of the thin film depends on the annealing temperature and the number of coating layers. The 1000 degreesC annealed single layer film is transparent to the naked eye, uniform and crack-free with a thickness of about 200 nm and an average grain size of 100 nm. Patterned thin films with different strip widths ( 5 - 50 mm) were obtained by micromolding in capillaries ( soft lithography). The doped rare earth ions show their characteristic emission in the nanocrystalline LaPO4 films, i.e., Eu3+ D-5(0)-F-7(J) (J = 1, 2, 3, 4), Tb3+ D-5(3,4) - F-7(J) ( J = 6, 5, 4, 3, 2) and Ce3+ 5d-4f transition emissions, respectively. Both the lifetimes and the PL intensities of Eu3+ and Tb3+ increase with increasing annealing temperature, and the optimum concentrations for them were determined to be 5 mol% and 16 mol% of La3+ in LaPO4 thin films, respectively. An energy transfer phenomenon from Ce3+ to Tb3+ has been observed in LaPO4 nanocrystalline thin films, and the energy transfer efficiency depends on the doping concentration of Tb3+ if the concentration of Ce3+ is fixed.
Resumo:
Ce3+ and/or Tb3+-doped LaPO4 nanocrystalline thin films and their patterning were fabricated by a sol-gel process combined with soft lithography on silicon and quartz glass substrates. The results of XRD indicated that the films began to crystallize at 700 degreesC. The 1000 degreesC annealed single layer films are transparent by eyes, uniform and crack-free with a thickness of about 200 nm and an average grain size of 100 nm. Patterned thin film with different band widths (5-50 mum) were obtained by micro-molding in capillaries technique. The luminescence and energy transfer properties of Ce3+ and Tb3+ were studied in LaPO4 films.
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稀土纳米材料因其独特的光、电、磁和催化等性能,在纳米器件和功能材料等诸多领域具有重要的应用价值。大量研究表明,纳米材料的物理和化学性质与其尺寸、成分、形貌和晶型密切相关。稀土纳米材料的合成方法有许多,然而,要真正实现这类材料的简单可控合成仍然是个艰难的课题。超声化学法由于具有操作简单、合成周期短、反应温度低、成本低廉并且产物均匀、粒径分布窄和纯度高等突出优点,已经在无机纳米材料制备领域中显示出独特的魅力。因此,本论文的工作是运用超声化学法合成有广泛应用前景的稀土纳米材料,对产物的形貌和粒径进行有效的调控,研究和分析其形成机理,并进一步考察其形貌、结构与性能之间的相互关系。 在本论文中,我们研究的体系集中在稀土磷酸盐、稀土氟化物和稀土钒酸盐三类纳米材料。 采用超声化学法得到的CePO4:Tb和CePO4:Tb/LaPO4(核/壳)纳米棒结晶完好,具有CePO4体材料的六方相结构。CePO4:Tb纳米棒直径为10-30 nm,长度为200 nm,CePO4:Tb/LaPO4(核/壳)纳米棒的LaPO4壳的厚度为2-10 nm。CePO4:Tb和CePO4:Tb/LaPO4(核/壳)纳米棒均具有Ce3+ (5d - 4f)和Tb3+ 5D4-7FJ(J = 6-3)的特征发射。与CePO4:Tb纳米棒核相比,CePO4:Tb/LaPO4(核/壳)纳米棒的光谱强度及荧光寿命均有较大的提高,这是由于形成核/壳结构后发光中心镧系金属离子与表面淬灭中心的距离增大,减少了能量传递过程中非辐射复合的路径,使能量淬灭受到抑制。 采用简单、快速、无模板辅助的超声化学法合成了稀土氟化物,并对产物的形貌和粒径进行了有效的调控。通过应用不同氟源(KBF4、NaF和NH4F)选择性合成了具有不同形貌的CeF3纳米材料,如片状、棒状和颗粒状。对具有不同形貌的CeF3样品进行了UV-Vis吸收光谱和荧光光谱测试和比较。研究结果表明不同形貌的样品,它们的光学性质存在很大差异,这说明纳米材料的光学性质与其形貌、粒径、晶体结构等因素有密切的关系。得到的EuF3单晶纳米材料具有三维花状形貌。这些纳米花的外形为球状,平均直径为0.9 μm-1.0 μm,每个花瓣的厚度约为0.14 μm。在其他实验条件不变的情况下,采用搅拌法而不经过超声辐射的对比实验只能得到二维纳米片,这表明超声辐射对花状EuF3的形成起到了至关重要的作用。基于不同反应时间的实验结果,我们提出了这种三维花状EuF3纳米材料可能的形成机理。 采用超声化学法选择性地合成了介孔及棒状CeVO4和纺锤状的YVO4:Eu3+ 纳米材料。CeVO4纳米棒的平均直径为5 nm,长度为150 nm。介孔CeVO4材料的比表面积较高(122 m2•g-1),孔径分布窄,其催化性能有望得到提高。纺锤状的YVO4:Eu3+ 纳米粒子具有四方相锆石结构,其直径为90-150 nm,长度为250-300 nm。超声辐射对样品的形貌起着关键作用,在其他反应条件不变,未采用超声辐射的情况下只能得到团聚严重的纳米颗粒。荧光测试表明,纺锤状YVO4:Eu样品表现为Eu3+ 5D0-7FJ(J = 1- 4)的特征跃迁,以5D0-7F2电偶极跃迁(614nm)为最强峰,属于红光发射。
Resumo:
等离子体平板显示(PDP)是目前高清晰度、大屏幕平板显示中的佼佼者,使挂壁彩电成为现实,但其关键部分之一-PDP荧光粉的发展却存在着相当滞后的问题,因此急需开发出性能更好的PDP荧光粉或对现有荧光粉的性能进行改善。改善PDP荧光粉性能的重要手段之一是选择合适的合成路径,因此本文探索了软化学合成方法-水热法在合成 PDP荧光粉合成中的应用,同时也采用高温固相法、共沉淀法对PDP荧光粉进行了合成,通过对比分析探索合成方法对PDP荧光粉光谱性质的影响。分别采用水热法、高温固相法、共沉淀法对掺杂稀土发光离子的稀土正硼酸盐(Y,Gd)BO_3、正磷酸盐(La,Gd)PO4、矾酸盐(Y,Gd)VO4、矾磷酸盐Y(P,V)O_4和硼硅酸盐LoBSIOS进行了合成,并用XRD、IR、SEM、XPS、TG-DTA等手段对其结构进行了表征,对上述PDP荧光粉的真空紫外(VUV)光谱、紫外可见光谱及发射光谱性质进行了研究,得到了一些新的、有意义的结果。(1)首次采用水热法以稀土氧化物、氢氧化物或硝酸盐与硼酸为原料合成了(Y,Gd)BO_3:RE~(3+)(RE=Eu,Th)系列荧光粉,并对其VUV光谱特性进行了研究。sEM分析发现水热法以氢氧化物、硝酸盐合成的荧光粉粒度在100-200nm之间。XPS揭示不同基质中带结构具有一定的差异。光谱分析发现(Y,Gd)BO_3:RE~(3+)的VUV光谱中110-175nm范围内存在着基质硼酸根(B3场)的吸收带,该吸收带随基质中G矛"浓度的增大而增强并发生了红移,认为红移是由于基质中B-O反键轨道能量的变化引起的。对能量传递过程进行分析认为G矛十起到能量传递中间体的作用,使基质对激活剂的敏化效率随G矛十浓度的增大而提高。(Y,Gd)BO3:RE3+中基质敏化效率的提高也可能是由于基质敏化带的红移使Gd3十或RE3+更容易从基质中获得能量。我们认为作为PDP荧光粉Eu3+或Th3+在GdB03基质中的发光性能更好。对水热合成的(Y,Gd)BO3:Eu~(3+)荧光粉进行热处理发现,荧光粉的亮度随热处理温度的提高而明显增强,说明一定温度下热处理有利于提高荧光粉的发光性能,这可能是由于热处理后荧光粉的结晶度提高,内部缺陷减少。比较水热法、高温固相法和共沉淀法对荧光粉性质的影响时发现三种方法制备的荧光粉光谱特性基本一致,但高温固相法和共沉淀法制备的荧光粉粒度较大,形貌不规则。(2)采用水热法制备了不同G矛十浓度的PDP荧光粉(L a,Gd)Po4:RE3+(RE=Eu,Tb),发现以稀土硝酸盐溶液和伽玩)2HPO4为原料,在pH值为5·240oC下反应3天可以合成出结晶度较高的纯相。从SEM照片中观察到水热法制备的荧光粉为晶化很好的棒状晶体。对水热法制备的LaP04:Eu3+和GdPO4:Eu3+进行热处理后发现热处理后晶体的尺寸变小,但形貌没有发生明显的变化,发光性能效果稍有提高。首次对共沉淀法合成的不同Gd3+浓度的(La,Gd)PO4:KE3+(RE=Eu,Tb)荧光粉的VUV光谱进行了分析,并研究了Gd3+在能量传递过程中的作用,发现随基质中Gd3十浓度的增大,基质对发光离子的敏化效率提高,认为Gd3+起着能量传递中间体的作用。同时观察到(La,Gd)PO4:Eu3+中电荷迁移带随着Gd3+浓度的增大而发生红移,这也可能会导致基质对Eu3+敏化效率的提高。首次利于xPs分析了LaPO4和GdP04的价带结构,发现LaP04的价带由O2的2P能级构成,而GdPo4的价带则是由O2-的2p能级和Gd3+的4f能级共同构成,这种价带结构的差异可能对(La,Gd)PO4:RE3+在VUV区的吸收产生影响。(3)首次对水热法合成的(Y,Gd)VO4:Eu3+的VUV光谱进行了研究,观察到120-170nm范围内存在着vO43一离子团的弱吸收带,200nm处存在着来自2P(O)→4f(Y)或5d(均跃迁的激发带,20onm以后的激发宽带是由Eu3+的电荷迁移带与VO43-的吸收带重叠而成的。对不同Gd3+浓度的(Y,Gd)VO4:E矿"的vLJ'v光谱进行研究发现,在一定G矛+浓度范围内Gd3+的加入使基质vo43+对Eu3+的敏化效率提高。对(Y,Gd)VO4:Eu3+中的能量传递过程进行分析认为,(Y,Gd)vo4:Eus+中可能存在着VO_4~(3-)→Eu~(3+)和VO_4~(3-)(vuv)→Gd~(3+)→VO_4~(3-)(UV)→Eu~(3+)等几种能量传递方式,Gd3+起着能量传递中间体的作用。(4)首次采用水热法合成了Y(P,v)O4:Eu3"红色荧光粉,发现初始体系pH为12.5、在240℃下反应6天可以得到Y(P,V)o4:Eu3+纯相。结合XRD和SEM分析发现Y(P,V)O4:Eu3+荧光粉的粒径随VO3-4浓度的增大而增大,YPO4:Eu3+的粒径为100-150nm,而YVO4:Eu3+的粒径则为400-450nm。对水热法合成的Y(P, V)O4:Eu3+的VUV光谱进行研究发现基质对Eu3+的敏化效率随VO3-4户含量的增多而提高。通过比较发射光谱中~5D_0→~7F_2与~5D_0→~7F_1跃迁的强度发现二者强度之比随VO_4~(3-_浓度的增大而增大,说明荧光粉的色纯度随VO4含量的增多而更好。比较水热法和高温固相法合成的Y(P,V)O4:Eus"的VUV光谱发现水热法制备的荧光粉在真空紫外区的吸收较弱,说明水热法制备的荧光粉虽然粒度较小,形貌规则,但发光性能不如高温固相法制备的Y(P,V)O4:Eu3+荧光粉。(5)分别采用水热法和高温固相法制备了单掺稀土发光离子的LaBSIOS,并对它们的光谱性质进行了研究。通过比较产物的SEM照片发现水热法可以制备出粒度为2-3μm,形状近似于球形的产物,而高温固相法制备的样品形貌不规则,粒度分布范围广。对水热法制备的LaBSiO_5:Eu~(3+)进行红外光谱分析发现1300-400cm~(-1)范围内为BO_4基团和SiO_4基团的振动峰。首次对高温固相法制备的LaBSiO_5:Re~(3+)(RE=Eu,Sm,Th)的vuv光谱性质进行了分析,认为其VUV光谱中125-200nm范围内存在着BO_4基团的吸收带(125-165nm)和SiO4四面体的吸收带(165-183nm)。比较两种方法制备的荧光粉的光谱性质和亮度发现两种方法制备的荧光粉光谱性质基本一致,而水热法制备的LaBSiO_5:RE~(3+)(RE=Eu,Sm,Tb)在254nm紫外光激发下亮度相对较低。
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利用溶胶-凝胶法合成了一系列稀土离子掺杂的发光薄膜,包括三元氧磷灰石稀土硅酸盐Ca2RS(SiO4)6O2(R=YGd)体系,YVO4体系,LaPO4体系以及钒磷酸盐形成的固熔体体系1并研究了稀土离子Eu3+,Tb3+,Dy3+,Sm3+,Er3+和类汞离子Pb2+在这些薄膜中的发光性质和能量传递性质。同时利用软石印法结合毛细管微模板技术实现了发光薄膜的图案化。SEM以及AFM结果表明,利用溶胶一凝胶法制备的发光薄膜表面致密均匀,无开裂。通过增加镀膜溶液的粘度、镀膜的次数可以有效的控制薄膜的厚度,使其达到理想的范围。由此可见溶胶一凝胶法是一种比较理想的制备发光薄膜的方法。在三元氧磷灰石稀土硅酸盐Ca2R8(SiO4)6O2(R=YGd)体系中,稀土离子Eu3+,Tb3+在Ca2Y8(SiO4)6O2基质中占据低刘·称性格位6h(Cs)和4f(C3),并以其特征的红光发射(5Do-7F2)和绿光发射(5D4-7F5)为主。Eu3+,Tb3+发光的最佳浓度分别为Y3+的10mol%和6mol%,Ca2Y8(51O4)6O2:Eu3+薄膜样品的发光强度和寿命随着烧结温度的升高而增加,Ca2Y8(SiO4)6O2:Tb3+薄膜样品的发光强度和寿命在800℃时最大,随后又随烧结温度的升高有所下降,Pb2+可以敏化Ca2Gd8(SiO4 )6O2中Gd3+的基质晶格,通过Pb2+→Gd3十→(Gd3+)n→A3+形式传递和转移能量。在YVO4体系中,利用Pechini溶胶一凝胶法以无机盐为主要原料,柠檬酸为络合剂,利用聚乙二醇调节镀膜溶液的粘度,制备了YvO4:A(A=Eu3+ Dy3+,Sm3+,Er3+)纳米发光薄膜。结合软石印法,通过简单工艺实现了发光薄膜图案化烧结过程中图案化薄膜有一定程度的收缩,存在一定的缺陷。得到的条纹在紫外灯下发出明亮的红光。掺杂的稀土离子在YVO4薄膜中显示它们特征发射,同时VO43-和稀土离子之间存在能量传递。Dy3+,Sm3+,Er3十发光的最佳浓度皆为Y3+的2mol%,这三者的发光淬灭是由交叉驰豫引起的。在LaPO4发光薄膜中,Etl3+以591nm的5Do-7Fl跃迁发射为主,呈现红橙光;Tb3+以543nm的5D4-7F5发射为主,属于绿光发射。Ce3+则由其特有的5d-4f双峰发射组成。Tb3+和Eu3+掺杂的样品发光强度和荧光寿命随烧结温度的升局而增加。Tb3+和Eu3+的寿命曲线符合指数衰减,但Tb3十在LaPO4:Ce,Tb薄膜中,所得的寿命曲线不符合单指数衰减。Ce3+和Tb3+之间存在吸收能量传递。通过计算得到能量传递效率可以达到95%以上。XRD结果表明,从x=0到x=1 YVxP1-xO4:Eu3+薄膜形成了一系列具有错石结构的固熔体。在YVxP1-xO4:Eu3+(0≤x≤1)系列薄膜中,随着x值的增加,Eu3+的发光强度和红橙比逐渐增大。除x=0,其它的Eu3+的红橙比都大于1,说明在发射光谱中,以Eu3+禁戒5Do一7F2电偶极跃迁为主,Etls十在基质中处于低对称性格位。当x=0时,即Y0.98Eu0.l2PO4薄膜中,Eu3+,仍处于D2d低对称性格位,但5D0一7FI橙光发射却比SD0一7F2红光发射强。x对Y0.98Eu0.02VxP1-xO4(0≤x≤l)薄膜寿命曲线有很大的影响,当0≤x≤0.5时,Eu3+5 D0-7F2发射呈单指数衰减;当x≥0.6时,Eu3+5D0-7F2发射的衰减曲线比较复杂,不能用单指数拟合。YVxP1-xO4:A3+(0≤x≤1,A=Er,Sm)薄膜中,由于存在VO43-A3+,以及VO43-(VO43-)n-A3+(n≥1)形式的能量传递,同时由于浓度淬灭,VO43-的蓝光发射在0.1≤x≤1范围内,随x的增加而减弱,当x=1时,VO43-的蓝光发射被完全淬灭,而A3+发光强度随x的增加而增加。在RVO4:A3+(R=Y,La,Gd,A=Eu,Sm,Er)纳米发光薄膜中,R对稀土离子发光性质的影响主要是由于基质晶体结构的不同。A3+在YVO4和GdVO4中属于D2d对称性,在YVO4和GdVO4薄膜中A3+的光谱性质基本相同,而LaVO4属于单斜晶系,具有独居石结构。A3+在LaVO4中属于C1对称性。C1对称性比D2d对称性低,A3+的发光光谱中谱线的位置以及谱线的劈裂数目都略有不同。由于Gd3+和发光离子之间的能量传递,A3+在GdVO4基质中的发光最强。
Resumo:
Uniform rare earth phosphate (REPO4, RE = La-Tb) nanocrystals were successfully synthesized in a properly designed TBP/[Omim]Cl/H2O (tributylphosphate/1-octyl-3-methyl-imidazolium chloride/water) microemulsion system. The phosphoryl groups anchored the TBP molecules oil the surfaces of the nanocrystals, and this made the nanocrystals easily dispersed in some imidazolium-based ILs. LaPO4:Eu3+ and CePO4:Tb3+ nanocrystals capped with TBP showed bright red and green emission under UV excitation, with enhanced emission intensity and lifetimes compared with the uncapped ones.
Resumo:
A dense clad overlay with chemical inertness was achieved on top of the plasma-sprayed YSZ thermal barrier coatings by laser in order to protect them from hot-corrosion attack. The Al2O3-clad YSZ coating exhibited good hot-corrosion behavior in contact with salt mixture of vanadium pentoxide (V2O5) and sodium sulfate (Na2SO4) for a longtime of 100 h at 1173 K. The LaPO4-clad YSZ coating showed corrosion resistance inferior to the Al2O3-clad one. Yttria was leached from YSZ by reaction between Y2O3 and V2O5, which caused progressive destabilization transformation of YSZ from tetragonal (t) to monoclinic (m) phase. The chemical inertness of the clad layers and the restrained infiltration of the molten corrosive salts by the dense clad layers were primary contributions to improvement of the hot-corrosion resistances.