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1.
负载稀土元素 Tm以改性 SO2 - 4 / Ti O2 ,制备出固体超强酸催化剂 Tm- SO2 - 4 / Ti O2 ,并用于催化柠檬酸与正丁醇的酯化反应 .考察了 Tm的负载对催化剂性能的影响 ,并借助吡啶吸附的程序升温脱附 (Py- TPD)法、差热分析 (DTA)、热重分析 (TGA)、红外光谱 (IR)法研究其结构与性能的关系 .实验结果表明 ,Tm的负载 ,使催化剂的催化活性有所提高 ,Tm的加量为催化剂量的 3%时制得的 Tm- SO2 - 4 / Ti O2 ,其催化酯化反应的转化率为94.4% ;Tm的负载能显著降低催化剂表面的积炭量 ,并且有效抑制 SO2 - 4 的流失 ,使 Tm- SO2 - 4 / Ti O2 催化剂具有良好的稳定性 ,重复使用 5次后反应的转化率仍高达 93.1%  相似文献   

2.
通过静电纺丝和预氧化制备了一种预氧化聚丙烯腈超细纤维(PrePANF),然后与氯磺酸反应引入磺酸基团,获得了一种独特的纤维状固体酸(SPrePANF)。采用扫描电镜仪(SEM)、红外光谱仪(FT-IR/ATR)、X-射线衍射仪(XRD)和元素分析仪(EA)对SPrePANF的微观形貌和化学结构进行了详细的表征。结果表明:预氧化作用使线性聚丙烯腈分子链形成了芳环结构,并通过磺化反应在芳环上引入了磺酸基。Beckmann重排反应催化结果表明:SPrePANF对二苯甲酮肟的Beckmann重排反应具有较好的催化活性和选择性;而且纤维膜结构使该催化剂可以方便地回收再利用,重复使用4次后仍然具有良好的催化活性。  相似文献   

3.
在异维生素C钠(D-VcNa)的合成过程中,以SO42-/S iO2-TiO2复合固体超强酸作为酯化反应催化剂,2-酮基-D-葡萄糖酸(2-KGA)和甲醇为原料,采用精馏脱水酯化工艺,不断除去酯化过程中产生的水。催化剂的最佳焙烧温度为550℃,催化剂用量为2.5%;反应时间3~4 h,产品收率为88.6%,催化剂的重复使用性较好,催化体系优于硫酸法。  相似文献   

4.
催化精馏专用填料型固体酸SO42-/ZrO2-Al2O3-Al的研究   总被引:2,自引:0,他引:2  
为了研制催化精馏专用催化剂,采用铝阳极氧化法制备了Al2O3-Al一体型载体,并将活性固体超强酸SO42-/ZrO2引入到Al2O3-Al上,得到一种新型催化精馏专用填料式固体酸SO42-/ZrO2-Al2O3-Al催化剂.利用XRD、 SEM、 BET、 XPS、 NH3-TPD等手段对其进行了表征.结果表明,所制得的阳极氧化铝膜厚为56 μm, SO42-/ZrO2-Al2O3-Al固体酸具有比表面积大、酸强度适中的特点.XRD结果表明, ZrO2在Al2O3-Al上处于高度分散状态.将该固体酸用于乙酸/乙醇酯化反应中,显示出较高的催化活性,且稳定性较好.  相似文献   

5.
以USY分子筛为载体,采用共沉淀-浸渍法制备分子筛超强酸SO42-/Ti O2/USY,用其催化丙二酸、无水乙醇合成胡萝卜酸乙酯。考察了不同反应时间、带水剂种类、带水剂用量、醇酸比、催化剂用量、催化剂重复使用性等因素对反应酯化率的影响。结果表明:在丙二酸用量为0.1mol,醇酸摩尔比为3.1:1,催化剂用量为1.0g,反应时间为3h,带水剂环已烷用量为5m L时,酯化率达到92.13%,催化剂重复使用5次以后仍然有很高的活性。说明SO42-/Ti O2/USY对该反应具有很强且极稳定的催化活性。  相似文献   

6.
用锐钛型纳米TiO2制备了纳米级SO42-/TiO2固体超强酸,考查了焙烧温度对酸强度、比表面积、红外光谱及其催化活性的影响.结果显示该催化剂在450℃焙烧3 h,可以形成纳米级SO42-/TiO2固体超强酸的结构.用该催化剂催化乙酸和丁醇酯化反应可使酯化率达到98.4%.  相似文献   

7.
以纳米磁性材料Fe3O4,Zr OCl2·8H2O和硫酸为原料,在不同焙烧温度下制备了纳米磁性固体酸催化剂SO42–/Zr(OH)4-Fe3O4.详细表征了该磁性固体酸的SO42–负载量、酸分布、表面形貌和孔结构等特性.在含有硝基和氰基强吸电子基苯甲醛的不对称水相Aldol反应中,SO42–/Zr(OH)4-Fe3O4表现出优良的催化性能(83%–100%收率,86.0%–95.6%ee anti和anti/syn=88–96/12–4).该类磁性固体酸可在外加磁体作用下定量地从催化反应体系中分离并回收使用,重复使用5次未见显著失活.  相似文献   

8.
李丽  张旦萍  范以宁 《无机化学学报》2011,27(11):2201-2204
本工作用溶胶-凝胶法制备不同组成的SO42-/TiO2-ZrO2复合氧化物固体酸催化剂,用微型催化反应评价结合X-射线粉末衍射(XRD)、孔结构/BET表面积测试和NH3-程序升温脱附(NH3-TPD)等表征了SO42-/TiO2-ZrO2复合氧化物固体酸催化剂结构、表面酸性和长叶烯芳构化催化性能。复合氧化物固体酸SO42-/TiO2-ZrO2催化剂具有优良的长叶烯芳构化催化性能,并且其芳构化催化性能与催化剂组成和表面酸性密切相关。随催化剂中nZr/(nZr+nTi)增加,催化剂表面中等强度的酸中心量增加,芳构化产物选择性和收率明显增加,在nZr/(nZr+nTi)=0.5时达极大值。随nZr/(nZr+nTi)进一步增加,不仅催化剂表面酸中心量减少、原料转化率明显下降,而且催化剂酸强度增强,导致芳构化产物选择性和收率下降。催化长叶烯芳构化的二元复合氧化物固体酸SO42-/TiO2-ZrO2催化剂适宜的组成为nZr/(nZr+nTi)=0.5。  相似文献   

9.
采用浸渍法对无定形ZnO分别用稀H2SO4和(NH4)2S2O8溶液处理, 制备了SO42-/ZnO和S2O82-/ZnO固体酸. 通过固体离子交换法制备了Cu(Ⅰ)/SO42-/ZnO和Cu(Ⅰ)/S2O82-/ZnO两种催化剂, 并采用XRD, FTIR, TPD和TPR等进行了表征. 研究结果表明, 用稀H2SO4和(NH4)2S2O8溶液分别浸渍处理无定形ZnO, 经过500-600 ℃高温焙烧后得到的SO42-/ZnO和S2O82-/ZnO固体酸表面形成了Zn3O(SO4)2物种; py-FTIR结果表明, 两者均具有B酸中心和L酸中心, 进一步的NH3-TPD研究结果证明, 制备的固体酸NH3脱附峰均出现在543 ℃附近, 属于高强度固体酸. 结构分析认为, 由于SO42-强烈的电子诱导作用, SO42-和ZnO形成的桥式配位物种产生了B酸中心和L酸中心, 而其螯合配位形成的物种没有酸性. SO42-/ZnO和S2O82-/ZnO固体酸与CuCl进行离子交换所制备的Cu(Ⅰ)/SO42-/ZnO和Cu(Ⅰ)/S2O82-/ZnO催化剂的Cu(Ⅰ)易于还原, 对甲醇氧化羰基化合成碳酸二甲酯(DMC)表现出较高的活性和选择性, DMC选择性为98.3%, 时空收率可达到1.9 g(g·h).  相似文献   

10.
本文以胶原纤维为模板,制备了多孔纤维状TiO2-ZrO2复合氧化物,并以此为载体制备了多孔纤维状SO42-/TiO2-ZrO2固体酸。SEM观察发现TiO2-ZrO2和SO42-/TiO2-ZrO2均复制了胶原纤维独特的纤维结构,TiO2-ZrO2氧化物的比表面积达到77.51 m2·g-1;XRD分析发现,Ti-Zr摩尔比对TiO2-ZrO2的晶相结构有重要影响,当Ti/Zr摩尔比为0.67∶1时,TiO2-ZrO2以TiZrO4晶相为主;NH3-TPD分析表明SO42-/TiO2-ZrO2的酸量及酸强度与Ti-Zr摩尔比以及活化温度有着密切关系。在乙酸与正丁醇的酯化反应中,多孔纤维状SO42-/TiO2-ZrO2固体酸表现出优良的催化性能。当催化剂用量为6.5wt%,反应时间为60min时,乙酸的转化率高达98.1%;该固体酸催化剂重复使用性优良,循环使用5次时,转化率仍然保持在85%以上。  相似文献   

11.
Scandium magnesium gallide, Sc2MgGa2, and yttrium magnesium gallide, Y2MgGa2, were synthesized from the corresponding elements by heating under an argon atmosphere in an induction furnace. These intermetallic compounds crystallize in the tetragonal Mo2FeB2‐type structure. All three crystallographically unique atoms occupy special positions and the site symmetries of (Sc/Y, Ga) and Mg are m2m and 4/m, respectively. The coordinations around Sc/Y, Mg and Ga are pentagonal (Sc/Y), tetragonal (Mg) and triangular (Ga) prisms, with four (Mg) or three (Ga) additional capping atoms leading to the coordination numbers [10], [8+4] and [6+3], respectively. The crystal structure of Sc2MgGa2 was determined from single‐crystal diffraction intensities and the isostructural Y2MgGa2 was identified from powder diffraction data.  相似文献   

12.
13.
On Dialkali Metal Dichalcogenides β-Na2S2, K2S2, α-Rb2S2, β-Rb2S2, K2Se2, Rb2Se2, α-K2Te2, β-K2Te2 and Rb2Te2 The first presentation of pure samples of α- and β-Rb2S2, α- and β-K2Te2, and Rb2Te2 is described. Using single crystals of K2S2 and K2Se2, received by ammonothermal synthesis, the structure of the Na2O2 type and by using single crystals of β-Na2S2 and β-K2Te2 the Li2O2 type structure will be refined. By combined investigations with temperature-dependent Guinier-, neutron diffraction-, thermal analysis, and Raman-spectroscopy the nature of the monotropic phase transition from the Na2O2 type to the Li2O2 type will be explained by means of the examples α-/β-Na2S2 and α-/β-K2Te2. A further case of dimorphic condition as well as the monotropic phase transition of α- and β-Rb2S2 is presented. The existing areas of the structure fields of the dialkali metal dichalcogenides are limited by the model of the polar covalence.  相似文献   

14.
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16.
TG and DTA studies on Me3SnO2PCl2, Me2Sn(O2PCl2)2 and Ph3SnO2PCl2 were carried out under dynamic argon atmosphere. The results show that the decomposition proceeds in different stages leading to the formation of Sn3(PO4)2 as a stable product. This compound was characterized by IR spectroscopy. Decomposition schemes involving reductive elimination reactions were proposed.  相似文献   

17.
The structures of the hypophosphites KH2PO2 (potassium hypophosphite), RbH2PO2 (rubidium hypophosphite) and CsH2PO2 (caesium hypophosphite) have been determined by single‐crystal X‐ray diffraction. The structures consist of layers of alkali cations and hypophosphite anions, with the latter bridging four cations within the same layer. The Rb and Cs hypophosphites are isomorphous.  相似文献   

18.
[(n‐Bu)2Sn(O2PPh2)2] ( 1 ), and [Ph2Sn(O2PPh2)2] ( 2 ) have been synthesized by the reactions of R2SnCl2 (R=n‐Bu, Ph) with HO2PPh2 in Methanol. From the reaction of Ph2SnCl2 with diphenylphosphinic acid a third product [PhClSn(O2PPh2)OMe]2 ( 3 ) could be isolated. X‐ray diffraction studies show 1 to crystallize in the monoclinic space group P21/c with a = 1303.7(1) pm, b = 2286.9(2) pm, c = 1063.1(1) pm, β = 94.383(6)°, and Z = 4. 2 crystallizes triclinic in the space group , the cell parameters being a = 1293.2(2) pm, b = 1478.5(4) pm, c = 1507.2(3) pm, α = 98.86(3)°, β = 109.63(2)°, γ = 114.88(2)°, and Z = 2. Both compounds form arrays of eight‐membered rings (SnOPO)2 linked at the tin atoms to form chains of infinite length. The dimer 3 consists of a like ring, in which the tin atoms are bridged by methoxo groups. It crystallizes triclinic in space group with a = 946.4(1) pm, b = 963.7(1) pm, c = 1174.2(1) pm, α = 82.495(6)°, β = 66.451(6)°, γ = 74.922(6)°, and Z = 1 for the dimer. The Raman spectra of 2 and 3 are given and discussed.  相似文献   

19.
Summary The ability of [MoS4]2–, anions to be used as ligands for transition metal ions has been widely demonstrated, especially with Fe2+. The present study has been restricted to linear complexes such as (NEt4)2 [Cl2FeS2MoS2] and (NEt4)2[Cl2FeS2MoS2FeCl2]. Their electrochemical properties are described: upon electrochemical reduction, these compounds yield MoS2, as a black precipitate, and an iron complex in solution, assumed to be [SFeCl2]2–. The electrochemical reduction goes through two electron transfers, coupled with the breakdown of the molecular skeleton: a DISPl and an ECE mechanism. Depending on the solvent, the following equilibrium may be observed: [Cl4Fe2MoS4]2–[Cl2FeMoS4]2–+FeCl2. The equilibrium constant, KD, was evaluated by differential pulse polarography. KD is tightly related to the donor number of the solvent.  相似文献   

20.
Wu YT  Linden A  Siegel JS 《Organic letters》2005,7(20):4353-4355
[reaction: see text] Fluoranthene 2 and heptacycle 3 are easily accessible from the reaction of diyne 1 and norbornadiene (NBD) in the presence of the rhodium catalyst. The unusual [(2+2)+(2+2)] adduct 3 was confirmed by the X-ray crystal structure analysis.  相似文献   

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