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1.
采用水热法,利用不同添加剂:柠檬酸(CA)、油酸(OA)、乙二胺四乙酸(EDTA)制备出了不同形貌前驱物Gd(OH)3,并经退火得到不同形貌的Gd2O3样品(S-CA、S-OA、S-EDTA)。XRD图表明所制得Gd2O3粉末均为立方晶系(空间群为Ia3),并且不同添加剂所得粉晶的晶格常数略有不同:1.082 25 nm(S-CA),1.081 14 nm(S-OA),1.083 20 nm(S-EDTA);SEM图可看出其颗粒大小分别约为63 nm(S-CA),300 nm(S-OA),2μm(S-EDTA);红外光谱则进一步证明3种产物均为Gd2O3,并且不同添加剂下样品的基团振动吸收强度不一样;利用荧光光谱仪和综合物性测量系统测量研究了经不同添加剂所制备出的稀土(Yb,Er/Ho)掺杂Gd2O3的上转换发光特性及磁学性能,结果表明:样品形貌对稀土掺杂Gd2O3上转换发光强度和顺磁磁化率影响较大,其中由EDTA添加剂所制备出的稀土掺杂Gd2O3粉末的上转换发光强度和顺磁磁化率最佳。  相似文献   

2.
采用溶胶-凝胶(Sol-gel)法制备了Er3+-Yb3+共掺杂Gd2Ti2O7纳米晶粉末,通过试验优化设计的理论建立了Er3+-Yb3+掺杂浓度与发光强度的回归方程,利用遗传算法优化计算出方程的最优解Er3+、Yb3+掺杂浓度分别为5.60%(物质的量分数)和13.43%。Er3+-Yb3+共掺杂Gd2Ti2O7纳米晶粉末为单一面心立方Gd2Ti2O7相结构,随Yb3+共掺杂浓度增加,X射线衍射峰逐渐向高角偏移。在976 nm激光激发下,Er3+-Yb3+共掺杂Gd2Ti2O7获得了分别对应于Er3+2H11/2/4S3/24I15/24F9/24I15/2跃迁的绿色和红色上转换发光,且绿色和红色发光均为双光子吸收过程。研究了最优样品上转换发光与温度之间的关系,发现绿色上转换发光具有优良的温度传感特性,对红色上转换发光的温度猝灭进行了解释。  相似文献   

3.
通过多步骤的化学法合成了Gd2O3:Yb3+,Nd3+,Tm3+/SiO2/Ag纳米复合材料。利用XRD,TEM,EDS,XPS,CLSM等方法对样品进行表征。实验结果表明,具有低声子能、稳定的化学性质的Gd2O3作为上转换发光的基质,当掺杂的敏化剂Nd3+离子浓度为1.0%(n/n),激活剂离子Tm3+浓度为0.5%(n/n)时,上转换发光强度达到最大值。此外,表面吸附的Ag纳米颗粒,由于表面等离激元共振耦合作用,使得上转换发光蓝光波段的强度增强1.70倍。  相似文献   

4.
以稀土硝酸盐-葡萄糖的混合溶液作为前驱体,采用一步水热法和随后的热处理得到了多层核壳结构Gd2O3∶Eu3+空心微球,并用X-射线衍射(XRD)、场发射扫描电镜(FESEM)、透射电镜(TEM)、X-射线能量色散光谱(EDS)和荧光光谱等测试手段对所得样品进行了表征。结果表明:所得空心球样品为纯的立方相的Gd2O3。具有规则的多层核壳空心结构,空心球的直径在2~3 μm左右,壁厚约为100 nm,并且Gd2O3∶Eu3+空心球是由尺寸约为30 nm的球形纳米颗粒自组装而成。样品中含有Gd、Eu、O元素。该空心球样品具有强的Eu3+的特征红光发射以及长的荧光寿命,可以用来作为时间分辨荧光标记物。  相似文献   

5.
采用沉淀-煅烧法制备了Gd2O3:Er3+上转换发光粉,通过X射线衍射、扫描电子显微镜、能谱和荧光光谱对其进行了表征,并利用该发光粉具有上转换发光的特性将其应用于染料敏化太阳电池(DSSC)。结果表明,管状Gd2O3:Er3+上转换发光粉可增加电池对太阳光的吸收范围和吸收效率,提高电池的光电流和光电压。研究了掺杂量对电池性能的影响,当掺杂量为5wt%时,光电转换效率从5.93%升高到7.55%,提高约27%。  相似文献   

6.
采用高温固相法制备了2个系列的荧光粉样品:Ba2-xZnGe2O7∶xBi3+(系列Ⅰ)和Ba1.994-yKyZnGe2O7∶0.006Bi3+(系列Ⅱ)。X射线衍射(XRD)测试结果表明,少量Bi3+、K+的掺杂不会明显改变材料的物相结构。样品的荧光光谱测试结果表明,虽然2个系列样品的发光光谱都随组成成分变化有少量变化,但发光颜色基本上均为黄绿色。在358 nm的激发下,荧光粉的发射光谱呈现一个峰值在 500 nm 的宽发射带,归属于 3P11S0能级跃迁。在 500 nm 监测下,荧光粉的最强激发峰位于 358 nm,归属于1S03P1能级跃迁,此外还有一个位于320 nm的肩峰归属于O2--Bi3+电荷转移带。系列Ⅰ样品的光谱数据结果指出,Bi3+的最佳掺杂量x为0.006。在该基质中,Bi3+掺杂取代Ba2+属于不等价取代,会在晶格中产生Ba2+空位或间隙O2-,对材料的发光强度产生负面影响。对此,采用K+与Bi3+协同掺杂起到电荷补偿的作用,填补Ba2+空位或捕获间隙O2-缺陷。空位被填补或间隙被捕获均减少了晶格畸变,从而使发光强度明显提高。系列Ⅱ样品的光谱数据表明,完全电荷补偿的荧光粉样品相比于没有掺K+的样品,其发光强度提高了约2.5倍。  相似文献   

7.
以共沉淀法与煅烧法联用,成功制备了一系列ZnAl2O4xMn4+样品。通过扫描电镜和X射线粉末衍射测试研究了样品的形貌和物相特征,结果表明尖晶石结构的ZnAl2O4中[AlO6]的八面体位可以有效被Mn4+替代。通过荧光激发和发射光谱研究了样品的发光性能,发现Mn4+在ZnAl2O4体系中掺杂可以显示出明亮的红色发光(发射峰值位于680 nm处)。比较不同Mn4+浓度(Mn与Al的物质的量之比)掺杂样品的发光强度时发现,Mn4+最佳掺杂浓度为0.06%。通过德克斯特公式分析了发光强度与浓度关系,探究浓度猝灭机制,结果表明最邻近离子之间能量传递造成Mn4+浓度猝灭的发生。为了提高Mn4+的发光强度,选择了7种金属离子(Li+、Na+、K+、Ca2+、Sr2+、Sn2+和Ga3+)与Mn4+共掺杂进入ZnAl2O4基质中,其中效果较突出的为Li+和Ga3+,其共掺杂使Mn4+发光强度分别增强0.6倍和1倍。  相似文献   

8.
以共沉淀法与煅烧法联用,成功制备了一系列ZnAl2O4xMn4+样品。通过扫描电镜和X射线粉末衍射测试研究了样品的形貌和物相特征,结果表明尖晶石结构的ZnAl2O4中[AlO6]的八面体位可以有效被Mn4+替代。通过荧光激发和发射光谱研究了样品的发光性能,发现Mn4+在ZnAl2O4体系中掺杂可以显示出明亮的红色发光(发射峰值位于680 nm处)。比较不同Mn4+浓度(Mn与Al的物质的量之比)掺杂样品的发光强度时发现,Mn4+最佳掺杂浓度为0.06%。通过德克斯特公式分析了发光强度与浓度关系,探究浓度猝灭机制,结果表明最邻近离子之间能量传递造成Mn4+浓度猝灭的发生。为了提高Mn4+的发光强度,选择了7种金属离子(Li+、Na+、K+、Ca2+、Sr2+、Sn2+和Ga3+)与Mn4+共掺杂进入ZnAl2O4基质中,其中效果较突出的为Li+和Ga3+,其共掺杂使Mn4+发光强度分别增强0.6倍和1倍。  相似文献   

9.
综合ZnO-Al2O3-SiO2系和锗酸盐玻璃陶瓷的优点,采用熔融-晶化法首次制备了Ho3+/Yb3+共掺以ZnAl2O4为主晶相的ZnO-Al2O3-GeO2-SiO2系玻璃陶瓷。因[GeO4]四面体和[SiO4]四面体都是玻璃网络形成体,讨论了GeO2取代SiO2对玻璃陶瓷样品硬度及发光性能的影响,最终确定GeO2的取代量为10.55%(w/w)时,玻璃陶瓷综合性能最佳。在980 nm泵浦光的激发下,发现强的绿色(546 nm)和弱的红色(650 nm)上转换发光,并研究了不同Ho3+/Yb3+掺杂比对样品上转换发光的影响,最终结果表明当Ho3+/Yb3+掺杂比为1:11(n/n)时样品荧光强度最强,在绿色上转换发光材料方面具有潜在的应用。  相似文献   

10.
以共沉淀法与煅烧法联用,成功制备了一系列ZnAl2O4:xMn样品。通过扫描电镜和X射线粉末衍射测试研究了样品的形貌和物相特征,结果表明尖晶石结构的ZnAl2O4中[AlO6]的八面体位可以有效被Mn4+替代。通过荧光激发和发射光谱研究了样品的发光性能,发现Mn4+在ZnAl2O4体系中掺杂可以显示出明亮的红色发光(发射峰值位于680 nm处)。比较不同Mn4+浓度(Mn与Al的物质的量之比)掺杂样品的发光强度时发现,Mn4+最佳掺杂浓度为0.06%。通过德克斯特公式分析了发光强度与浓度关系,探究浓度猝灭机制,结果表明最邻近离子之间能量传递造成Mn4+浓度猝灭的发生。为了提高Mn4+的发光强度,选择了7种金属离子(Li+、Na+、K+、Ca2+、Sr2+、Sn2+和Ga3+)与Mn4+共掺杂进入ZnAl2O4基质中,其中效果较突出的为Li+和Ga3+,其共掺杂使Mn4+发光强度分别增强0.6倍和1倍。  相似文献   

11.
The phase relations in the cross-section of the K2W2O7-K2WO4-KPO3 containing 15 mol% Bi2O3 were undertaken using flux method. Crystallization fields of K6.5Bi2.5W4P6O34, K2Bi(PO4)(WO4), Bi2WO6, KBi(WO4)2 and their cocrystallization areas were identified. Novel phase K6.5Bi2.5W4P6O34 was characterized by single-crystal X-ray diffraction: sp. gr. P−1, a=9.4170(5), b=9.7166(4), c=17.6050(7) Å, α=90.052(5)°, β=103.880(5)° and γ=90.125(5)°. It has a layered structure, which contains {K7Bi5W8P12O68} layers stacked parallel to ab plane and sheets composed by potassium atoms separating these layers. Sandwich-like {K7Bi5W8P12O68} layers are assembled from [W2P2O13] and [BiPO4] building units, and are penetrated by tunnels with K/Bi atoms inside. FTIR-spectra of K2Bi(PO4)(WO4) and K6.5Bi2.5W4P6O34 were discussed on the basis of factor group theory.  相似文献   

12.
phase diagrams of KCl-KBO2-K2CO3, K2MoO4-KBO2-K2CO3, and K2WO4-KBO2-K2CO3 ternary systems were studied by a calculation-experimental method and differential thermal analysis (DTA). The coordinates of ternary eutectics were determined to be E 1: 622°C, 8.5 mol % KBO2, 56.5 mol % KCl, and 35 mol % K2CO3; E 2: 710°C, 23 mol % KBO2, 43 mol % K2CO3, and 34 mol % K2MoO4; E 3: 710°C, 23 mol % KBO2, 43 mol % K2CO3, and 34 mol % K2WO4. The specific heats of melting of the eutectics were determined.  相似文献   

13.
K3InF6 is synthesized by a sol-gel route starting from indium and potassium acetates dissolved in isopropanol in the stoichiometry 1:3, with trifluoroacetic acid as fluorinating agent. The crystal structures of the organic precursors were solved by X-ray diffraction methods on single crystals. Three organic compounds were isolated and identified: K2InC10O10H6F9, K3InC12O14H4F18 and K3InC12O12F18. The first one, deficient in potassium in comparison with the initial stoichiometry, is unstable. In its crystal structure, acetate as well as trifluoroacetate anions are coordinated to the indium atom. The two other precursors are obtained, respectively, by quick and slow evaporation of the solution. They correspond to the final organic compounds, which give K3InF6 by decomposition at high temperature. The crystal structure of K3InC12O14H4F18 is characterized by complex anions [In(CF3COO)4(OHx)2](5−2x)− and isolated [CF3COOH2−x](x−1)− molecules with x=2 or 1, surrounded by K+ cations. The crystal structure of K3InC12O12F18 is only constituted by complex anions [In(CF3COO)6]3− and K+ cations. For all these compounds, potassium cations ensure only the electroneutrality of the structure. IR spectra of K2InC10O10H6F9 and K3InC12O12F18 were also performed at room temperature on pulverized crystals.  相似文献   

14.
Solubility in the Na2Cr2O7-(NH4)2Cr2O7-K2Cr2O7-H2O four-component water-salt system at 25, 50, and 75°C was studied for the first time. Phase field boundaries for individual salts and potassium and ammonium dichromate solid solutions, monovariant lines, and invariant points were determined. Experimental data were used to optimize the looped isohydric process of potassium dichromate preparation involving additional salts.  相似文献   

15.
马修臻  胡斌 《化学通报》2018,81(10):939-943,938
本文用高精度数字式振荡管密度计测定了288K至318K温度范围内Li2SO4 + Na2SO4 + H2O和 Li2SO4 + K2SO4 + H2O三元体系的密度。混合溶液的离子强度范围从0.1到4.5 mol.kg–1,混合溶液中Na2SO4和K2SO4的离子强度分数为0.2,0.4,0.6和0.8。用密度实验值拟合得到了不同温度下Pitzer离子相互作用模型混合参数θV和 ψV,模型的计算值与实验值的偏差在±0.002 g.cm3以内。用Pitzer模型计算了不同离子强度下三元体系的混合体积。  相似文献   

16.
The phase diagrams of the NaBO2-NaCl-Na2CO3, NaBO2-Na2CO3-Na2MoO4, NaBO2- Na2CO3-Na2WO4, and NaBO2-NaCl-Na2WO4 ternary systems were studied by a calculation-experimental method and differential thermal analysis. The coordinates of ternary eutectics were determined: E 1: 612°C, 16 mol % NaBO2, 42 mol % NaCl, and 42 mol % Na2CO3; E 2: 568°C, 12 mol % NaBO2, 28 mol % Na2CO3, and 60 mol % Na2MoO4; E 3: 575°C, 12 mol % NaBO2, 32 mol % Na2CO3, and 56 mol % Na2WO4; E 4: 628°C, 8 mol % NaBO2, 20 mol % NaCl, and 72 mol % Na2WO4; and E 5: 655°C, 9 mol % NaBO2, 53 mol % NaCl, and 38 mol % Na2WO4.  相似文献   

17.
Two compounds of formula La7A3W4O30 (with A=Nb and Ta) were prepared by solid-state reaction at 1450 and 1490 °C. They crystallize in the rhombohedric space group R-3 (No. 148), with the hexagonal parameters: , and , . The structure of the materials was analyzed from X-ray, neutron and electronic diffraction. These oxides are isostructural of the reduced molybdenum compound La7Mo7O30, which are formed of perovskite rod along [111]. An order between (Nb, Ta) and W is observed.  相似文献   

18.
Two compounds NaSr0.5Al2B2O7 and NaCa0.5Al2B2O7, have been found to crystallize into a new structure type by Rietveld refinement from X-ray powder diffraction data. Their structure belongs to hexagonal space group P63/m, with lattice parameters of , for NaSr0.5Al2B2O7 and , for NaCa0.5Al2B2O7, respectively. The structure is built up by [Al2B2O7]2− double layer and Na+/Ca2+ or Na+/Sr2+ ions alternatively stacking along the c-axis. The sites in the inter-double layer are fully occupied jointly by Na and Ca or Sr, but the intra-double layer sites are only half occupied solely by Na. A mechanism of the transition of the structure from CaAl2B2O7 to present structure type by replacing only 1% Ca by Na (2%) as observed by Chang and Keszler (Mater. Res. Bull. 33 (1998) 299) is also proposed.  相似文献   

19.
SnSbBiS4-SnS and SnSbBiS4-Sn2Sb6S11 sections were studied by physicochemical methods (DTA, X-ray powder diffraction, microstructure observation, and microhardness measurements). These sections were found to be eutectic quasi-binary sections of the SnS-Sb2S3-Bi2S3 ternary system. Solid solution regions based on the initial components were found on either side of the sections. Alloys in the solid solution region are p-type semiconductors.  相似文献   

20.
The structural, electronic, and vibrational characteristics and energies of the isolated polyoxide clusters B20O30, Al20O30, V20O50, Si20O30H20, and Si20O30F20 and their complexes with the H ion and ammonia complexes Al20O30 · nNH3 have been calculated by the density functional theory B3LYP method with different basis sets. The computation results show that the symmetric closo structure I h with oxygen bridges located above the centers of the faces of an empty [M20] dodecahedron is more favorable for V20O50, Si20O30H20, and Si20O30F20. For B20O30, the cage closo isomer is also more favorable than the other isomers, but its structure is severely distorted as compared to a dodecahedron and has a symmetry close to C 3 . For Al20O30, the I h structure corresponds to a high-lying local minimum of the potential energy surface. For Al20O30, a set of unusual puckshaped isomers of symmetry C i , with different numbers of four-coordinate atoms IVAl and three-coordinate atoms IIIO, was localized; these structures are more than 90 kcal/mol more favorable than the dodecahedron I h . The most favorable isomer of Al20O30 contains twelve four-coordinate atoms IVAl and four five-coordinate atoms VAl. The energies of dissociation of the most favorable M20O30 clusters into the M2O3 (C 2v ) and M4O6 (T d ) fragments and, in the case of Al20O30, also into the Al8O12 (O h ) and Al12O18 (D 3d ) fragments, have been estimated. The conclusion has been drawn that these clusters can, in principle, exist and can be experimentally detected in the isolated state. Analogous calculations have been performed for ammonia complexes Al20O30 · nNH3 with n varying from 1 to 20. The effect of solvation on the relative stability of the dodecahedral and puckshaped isomers of the Al20O30 cluster is observed. The isomers with ammonia molecules in their first coordination sphere become much closer to one another on the energy scale; however, the dodecahedron remains a considerably less favorable intermediate. Original Russian Text ? O.P. Charkin, N.M. Klimenko, D.O. Charkin, 2008, published in Zhurnal Neorganicheskoi Khimii, 2008, Vol. 53, No. 4, pp. 624–635.  相似文献   

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