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1.
设计并合成了一种以磁性纳米粒子为核,聚合物为中间层,金属有机骨架材料为外层的三层结构磁性复合材料(Fe3O4@PAA@ZIF 8)。首先利用溶剂热法制备Fe3O4纳米粒子,然后通过蒸馏沉淀聚合法在Fe3O4纳米粒子表面包覆聚丙烯酸(PAA)层,最后通过原位沉积法在PAA外部包覆ZIF 8。在对Fe3O4@PAA@ZIF 8的组成和结构进行表征的基础上,深入研究其对孔雀石绿(MG)的吸附性能。透射电子显微镜(TEM)显示 Fe3O4@PAA@ZIF 8 具有明显的三层结构,Fe3O4的平均粒径为 117nm,PAA 层厚度约为 17 nm,ZIF 8层的厚度约为 14 nm。Fe3O4@PAA@ZIF 8对 MG 的吸附量随着 pH 的升高而增大,吸附过程符合准二阶动力学模型和 Langmuir等温吸附模型。此外,Fe3O4@PAA@ZIF 8还表现出良好的重复利用性能,8次循环利用后对MG(500 mg·L-1)的最大吸附量仍可达982 mg·g-1。  相似文献   

2.
设计并合成了一种以磁性纳米粒子为核,聚合物为中间层,金属有机骨架材料为外层的三层结构磁性复合材料(Fe3O4@PAA@ZIF-8)。首先利用溶剂热法制备Fe3O4纳米粒子,然后通过蒸馏沉淀聚合法在Fe3O4纳米粒子表面包覆聚丙烯酸(PAA)层,最后通过原位沉积法在PAA外部包覆ZIF-8。在对Fe3O4@PAA@ZIF-8的组成和结构进行表征的基础上,深入研究其对孔雀石绿(MG)的吸附性能。透射电子显微镜(TEM)显示Fe3O4@PAA@ZIF-8具有明显的三层结构,Fe3O4的平均粒径为117 nm,PAA层厚度约为17 nm,ZIF-8层的厚度约为14 nm。Fe3O4@PAA@ZIF-8对MG的吸附量随着pH的升高而增大,吸附过程符合准二阶动力学模型和Langmuir等温吸附模型。此外,Fe3O4@PAA@ZIF-8还表现出良好的重复利用性能,8次循环利用后对MG (500 mg·L-1)的最大吸附量仍可达982 mg·g-1。  相似文献   

3.
为了提高壳聚糖的多染料吸附性能并使其便于固液分离,采用共沉淀法制备了壳聚糖、磁铁矿纳米颗粒、氧化石墨烯复合磁性吸附剂(CS/Fe3O4/GO)。系统的结构表征显示,CS包覆的Fe3O4磁性纳米颗粒均匀地分布在GO的表面。CS/Fe3O4/GO具有高达42.5 emu·g-1的室温铁磁性,因此可在外加磁场中实现高效固液分离。研究表明,CS/Fe3O4/GO对亚甲基蓝(MB)、甲基橙(MO)和刚果红(CR)等多种染料具有良好的吸附性能,溶液的pH、初始浓度和吸附时间对其多染料吸附性能具有显著影响。在最佳条件下,CS/Fe3O4/GO对MB、MO和CR的吸附量分别达到210.6、258.6和308.9 mg·g-1。CS/Fe3O4/GO具有优异的循环利用性能,经5次循环后仍能保留90%以上的原始吸附量。采用吸附等温线和吸附动力学对CS/Fe3O4/GO的多染料吸附性能进行了拟合分析,并详细讨论了其吸附机理。  相似文献   

4.
以水热法制备的高磁饱和强度Fe3O4纳米颗粒为核,正硅酸乙酯(TEOS)为前驱体,采用改进的Stöber法,制备介孔SiO2包覆Fe3O4磁性核壳复合微球。利用XRD、SEM、TEM、N2吸-脱附、FTIR和VSM对制备样品的物相结构、形貌和磁性能进行了测试表征。研究结果表明,制备的复合材料呈球形,粒径分布均一,材料的比表面积和磁饱和强度分别为413 m2·g-1和68.93 emu·g-1。研究了TEOS的添加量对复合微球形貌的影响,随着TEOS添加量的增加,SiO2壳层增厚,复合粒子形貌均匀,饱和磁化强度有所下降,仍具有良好的超顺磁性。在此基础上,通过接枝法在复合微球的表面接枝-NH2,制备了一种新型磁性纳米吸附剂(Fe3O4@SiO2@mSiO2-NH2),进而研究了其对水中重金属离子Cr(Ⅳ)的吸附性能。通过动力学拟合,Fe3O4@SiO2@mSiO2-NH2对Cr(Ⅳ)的吸附过程是准二级动力学模型占主导地位。探究了该材料对Cr(Ⅳ)的吸附过程和吸附机理。结果表明,其吸附机理及吸附容量与Cr(Ⅳ)的离子形态及-NH2有关,并通过吸附剂与吸附质之间的电子共用或静电吸附实现。  相似文献   

5.
采用“一锅法”制备了四氧化三铁/半胱氨酸(Fe3O4/Cys)磁性纳米微球,随后对Fe3O4/Cys进行亚氨基二乙酸(IDA)修饰得到Fe3O4/Cys/IDA磁性双功能化纳米微球。研究发现Fe3O4/Cys中的L-Cys是通过—SH基团接枝到Fe3O4表面的,随后IDA分子中的羧基与Fe3O4/Cys中的—NH2形成酰胺键,最终形成多支链多羧基的Fe3O4/Cys/IDA磁性纳米修复剂。基于修复剂表面短支链-长支链交替的多羧基结构,实现了羧基基团的高密度接枝。同时,Fe3O4/Cys/IDA磁性纳米微球对Pb2+、Cd2+、Cu2+、Co2+、Ni2+、Zn2+为专性吸附,而对Hg2+属于非专性吸附,且吸附重金属后得到的钝化产物均表现了良好的稳定性。另外,Fe3O4/Cys/IDA对重金属离子的吸附符合Langmuir模型,属于单层均相吸附,其吸附过程符合准二级动力学模型,最大吸附量为49.05 mg·g-1。  相似文献   

6.
采用改进的Stober法合成了多孔结构的双层SiO2包覆Fe3O4复合材料,利用TEM、XRD、VSM和氮吸附-脱附实验对其结构与性能进行分析,进而研究其对染料的吸附性能。研究结果表明,双层SiO2包覆Fe3O4复合材料的比表面积和磁饱和强度分别为308 m2·g-1和45.5 emu·g-1;当罗丹明B的初始浓度从25 mg·L-1提高到250 mg·L-1时,复合材料对其饱和吸附量从24.0 mg·g-1增大到112.4 mg·g-1,而亚甲基蓝的初始浓度从25 mg·L-1提高到500 mg·L-1时,对其饱和吸附量从22.0 mg·g-1增大到235.1 mg·g-1;随着溶液pH值增大,复合材料对罗丹明B的饱和吸附量增加,而对亚甲基蓝的饱和吸附量变化不明显;温度在20~40 ℃范围内复合材料的吸附量较大。  相似文献   

7.
采用改进的Stober法合成了多孔结构的双层SiO2包覆Fe3O4复合材料,利用TEM、XRD、VSM和氮吸附-脱附实验对其结构与性能进行分析,进而研究其对染料的吸附性能。研究结果表明,双层SiO2包覆Fe3O4复合材料的比表面积和磁饱和强度分别为308 m2·g-1和45.5 emu·g-1;当罗丹明B的初始浓度从25 mg·L-1提高到250 mg·L-1时,复合材料对其饱和吸附量从24.0 mg·g-1增大到112.4 mg·g-1,而亚甲基蓝的初始浓度从25 mg·L-1提高到500 mg·L-1时,对其饱和吸附量从22.0 mg·g-1增大到235.1 mg·g-1;随着溶液pH值增大,复合材料对罗丹明B的饱和吸附量增加,而对亚甲基蓝的饱和吸附量变化不明显;温度在20~40 ℃范围内复合材料的吸附量较大。  相似文献   

8.
以溶剂热法制备氨基功能化的Fe3O4纳米颗粒为磁核,结合溶胶-凝胶法和模板法在其表面先后包覆上致密的SiO2层和介孔TiO2层,制备了磁性-发光-微波热转换性-介孔结构为一体的多功能核-壳结构纳米复合颗粒,并对其结构、性能及载药能力进行了研究。XRD分析表明:Fe3O4表面包覆上了无定形结构的SiO2和TiO2。TEM照片表明:所得的纳米复合颗粒具有明显的核壳结构和完美的球形,构成核的Fe3O4颗粒的尺寸在40~50 nm之间,Fe3O4@SiO2@mTiO2核壳结构纳米复合颗粒的尺寸为60~70 nm,壳层厚度约10 nm,并可观察到壳层中清晰的孔状结构。磁性、荧光光谱和微波热转换特性分析表明:该复合颗粒同时具有良好的发光性、磁性和微波热转换特性。N2气吸附及药物负载率分析表明,该复合颗粒具有较高的比表面积(640 m2·g-1)和介孔结构(孔径约2.8 nm)并且具有较高的药物负载率。  相似文献   

9.
斜发沸石的合成研究   总被引:2,自引:0,他引:2  
采用水热法,分别在物质量的比为2.1Na2O∶10SiO2∶Al2O3∶110.1H2O和1.05K2O∶1.05Na2O:12SiO2∶Al2O3∶250H2O的条件下合成出较高纯度斜发沸石,研究了斜发沸石合成的各种影响因素。结果表明,在140、160和180 ℃条件下均能合成出斜发沸石,且提高温度可以缩短斜发沸石的晶化时间;反应混合物的硅铝物质量的比应控制在10~12之间;碱度的降低会导致晶化时间延长,过高的碱度则导致晶种溶解;反应混合物中K+的存在利于斜发沸石的晶化。合成斜发沸石对海水中K+饱和吸附量达 38.60 mg·g-1以上,其吸附性能显著优于文献报导的天然斜发沸石。  相似文献   

10.
以溶剂热法制备了Fe3O4@SiO2-PSS@UiO-66结构的磁性多孔复合材料,并利用XRD,TEM,SEM,IR,TG,VSM 和N2吸附-脱附对样品的结构和形貌进行测试表征。研究结果表明:磁性UiO-66复合材料是以球型Fe3O4为核,MOF为壳的核-壳结构,其表面的MOF层由多个立方多晶堆积组装而成,且具有良好的超顺磁性。进一步研究了Fe3O4@SiO2-PSS@UiO-66对2-硝基-1,3-苯二酚的吸附性能。探讨了吸附时间,吸附量和2-硝基-1,3-苯二酚初始浓度在吸附过程中的影响,结果表明:当吸附时间为12 h,吸附剂的用量为5 mg,2-硝基-1,3-苯二酚浓度为400 mg·L-1时,最大吸附量为161.36 mg·g-1。另外,磁性UiO-66复合材料对2-硝基-1,3-苯二酚高的吸附性能可能是由于UiO-66与2-硝基-1,3-苯二酚之间的静电作用以及二者之间苯环的π-π作用。  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.
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   

13.
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   

14.
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   

15.
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   

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.
一些具有NASICON型网格结构的固体电解质具有高的电导率和好的稳定性,NASICON的意思是Na Super Ionic Conductor[1]。当NaZr2(PO4)3中P5 被Si4 部分取代时便可以得到具有NASICON结构的Na1 xZr2SixP3-xO12体系,其具有高的钠离子电导率。然而有相同结构的Li1 xZr2SixP3-xO12体系的离子电导率却很低,这是因为Li 半径太小,而NASICON三维网格结构的离子通道太大,两者不匹配而使电导率下降[2]。但当LiZr2(PO4)3中Zr4 被离子半径小些的Ti4 取代,所得LiTi2(PO4)3的通道就与Li 半径相匹配,适合于锂离子的迁移,从而使其电导率…  相似文献   

19.
We have studied the preparation and crystallographic structure of three perovskite-type compounds: Sr3Cr2WO9, cubic, the lattice parameter of which is a = 7.812Å; Ca3Cr2WO9, tetragonal, the lattice parameters of which are a = 5.408 Å and c = 7.635Å; and Ba3Cr2WO9, hexagonal, the lattice parameters of which are a = 5.691 Å and c = 13.957Å. We have compared these three structures and shown the relationship between the dimensions of the alkaline-earth metal and the existence of the different structures.  相似文献   

20.
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   

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