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1.
Ti-Si介孔分子筛的转晶与控制   总被引:6,自引:0,他引:6  
以季铵盐型阳离子Gemini表面活性剂[C16H33(CH3)2N+(CH2)6N+(CH3)2C16H33]•2Br−(GEM16-6-16)为模板剂, 改变n(Ti)/n(Si)比值, 合成了系列Ti-Si介孔分子筛. X射线衍射(XRD)和透射电子显微镜(TEM)等表征结果表明, 在n(Ti)/n(Si)≤0.20时, 分子筛为高度有序六方介孔; 当 n(Ti)/n(Si)为 0.30时, 介孔转晶为立方相; 当n(Ti)/n(Si)为0.50时, 介孔转晶为层状相; n(Ti)/n(Si)为1.0时, 材料失去有序孔道结构. FT-IR分析表明, 在分子筛骨架间形成了Ti—O—Si键, 而且Ti—O—Si键的数目随n(Ti)/n(Si)的增加而增加, 达到一定饱和值后基本保持不变. 乙醇和丁醇对纯硅基介孔分子筛孔结构转晶控制作用呈现六方相→立方相→层状相递变规律, 因而钛酸正丁酯水解生成的丁醇对Ti-Si介孔分子筛转晶具有一定的控制作用.  相似文献   

2.
微孔/介孔复合分子筛的合成及其对CO2的吸附性能   总被引:1,自引:0,他引:1  
采用两步晶化法将合成的沸石前驱液(S)或沸石固体粉末(P)经不同浓度(c)的NaOH处理后, 分别以表面活性剂十六烷基三甲基溴化铵(CTAB)软模板或介孔炭(Meso-C)硬模板为导向剂, 自组装合成S-β-MCM41(c)、P-β-MCM41(c)、P-ZSM-MCM41(c)、P-ZSM-C系列微孔/介孔复合分子筛. 考察了沸石分子筛种类、碱处理液浓度以及介孔模板剂对合成复合分子筛结构与性能的影响. X射线衍射(XRD)、透射电子显微镜(TEM)和氮气吸附-脱附表征结果表明产物具有微孔/介孔多级孔结构. 该材料对CO2的吸附能力比纯微孔或介孔材料均有明显提高, 其中P-ZSM-MCM41(2)的CO2吸附容量最大可达1.51 mmol·g-1, 为ZSM-5沸石吸附量的两倍多.  相似文献   

3.
SBA-15介孔分子筛内填充蔗糖并炭化后, 分别在碱性和弱酸性条件下, 用含铝源及TPABr的溶液浸渍,将SBA-15分子筛孔壁的无定形结构转化成ZSM-5分子筛的晶体结构, 除碳后得到含介孔的ZSM-5分子筛. 用X射线衍射、 N_2吸附-脱附、 ~(27)Al MAS NMR、 NH_3-TPD、 TEM、 SEM等对样品进行了表征, 考察了晶化时间等参数对样品的影响. 结果表明, 碱性条件下合成的ZSM-5分子筛晶体中含有少量孔径约3.2~4.2 nm的介孔孔道, 其酸强度接近与常规ZSM-5分子筛的酸强度;弱酸性条件下合成的ZSM-5分子筛晶体中含有大量孔径约1.4~1.6 nm的孔道, 其酸强度明显低于常规ZSM-5分子筛的酸强度.  相似文献   

4.
以十六烷基三甲基溴化铵为模板剂,通过水解钛酸正丁酯合成了介孔二氧化钛分子筛,探讨了合成条件的影响。采用X射线粉末衍射(XRD)、红外光谱(FT-IR)、透射电子显微镜(TEM)和N2吸附-脱附等技术对介孔二氧化钛的晶相、结构、形貌、比表面积和孔径分布进行了表征。实验结果表明:得到的介孔二氧化钛分子筛的孔径为4-4.3nm,用抽提的方法去除模板剂得到的介孔二氧化钛的比表面积比焙烧的要高。以甲基橙为模型污染物,检验了所合成介孔二氧化钛的光催化性质。  相似文献   

5.
介孔分子筛V-MCM-41的水热法制备与合成机理   总被引:4,自引:0,他引:4  
 以十六烷基三甲基溴化铵为模板剂,廉价的工业级高模数比(3.3)的硅酸钠为硅源,通过水热法合成了V-MCM-41介孔分子筛. 考察了合成条件对产物织构的影响,并采用低温氮吸附法分析探讨了介孔分子筛V-MCM-41的合成机理. 结果表明,模板剂用量、 pH值、加料方式、晶化温度、晶化时间、陈化时间和焙烧气氛等合成条件对介孔分子筛的制备均有影响,其中晶化温度、 pH值和模板剂用量的影响最为明显. X射线衍射谱表明合成的介孔分子筛具有六方晶体结构. 红外光谱和紫外可见光谱表明V进入了介孔分子筛的骨架结构.  相似文献   

6.
以水玻璃为硅源、Al_2(SO_4)3·18H_2O为铝源,投料硅铝比SAR=n(SiO_2)/n(Al_2O_3)=40,前躯体凝胶pH=11.2、Na_2O/SiO_2=0.18、H_2O/SiO_2=43、m(晶种)/m(SiO_2)=0.16,不添加任何模板剂条件下合成了具有多级孔结构的超低硅铝比ZSM-5分子筛,其结构经27Al NMR,SEM-EDS,Py-IR,NH_3-TPD,XRD和N_2吸脱附表征。SEM结果表明ZSM-5分子筛晶体为侧面呈"维管束"状的长方体;EDS分析表明其表面硅铝分布具有显著不均一性:顶底表面SAR=20,侧面SAR=13。NH_3-TPD分析表明:该ZSM-5分子筛整体具备可观的弱酸总酸量(1.9 mmol·g~(-1)),且以Lewis酸为主。N_2吸脱附实验表明:ZSM-5分子筛存在明显的介孔结构,属同时含有微孔-介孔结构的多级孔、超低硅铝比ZSM-5分子筛。  相似文献   

7.
微孔-介孔复合结构分子筛的合成及表征研究   总被引:4,自引:2,他引:4  
以工业现有的ZSM-5作为原料,经一定化学处理的ZSM-5作为部分硅铝源,与介孔分子筛的凝胶在水热条件下进行组装得到具有微孔、介孔双孔分布的复合分子筛,并采用XRD、N2吸附脱附、IR、SEM、TEM等测试手段对合成样品进行分析表征,考察了主要合成条件对分子筛性能的影响.结果表明,合成过程中微孔与介孔结构之间会相互转化,样品中微孔与介孔特征峰存在此消彼长的关系.非临氢反应结果表明,复合分子筛具有较高的异构化选择性.  相似文献   

8.
模板剂对全硅MCM-41介孔分子筛结构的影响   总被引:10,自引:0,他引:10  
分别采用十六烷基三甲基溴化铵和十六烷基三乙基溴化铵作为模板剂,硅溶胶为硅源,用水热晶化法在碱性(NaOH)介质中合成了MCM-41介孔分子筛样品.通过XRD、N2吸附-脱附、TG-DTA、IR等测试手段对这两种样品进行了对比表征分析.考察了两种不同模板剂对其晶体结构、比表面及孔径大小的影响.实验结果表明,相对于十六烷基三甲基溴化铵做模板剂,采用大头基的十六烷基三乙基溴化铵可以合成较大孔径和孔容(分别为4.72 nm和1.14 cm3•g-1)的MCM-41介孔分子筛,而且具有较窄的孔径分布,因此对于合成大孔径的介孔分子筛MCM-41,十六烷基三乙基溴化铵是一种很好的模板剂.  相似文献   

9.
酸诱导介观相转变硅基介孔材料的合成机理及其改性   总被引:1,自引:1,他引:0  
采用两步法以三嵌段共聚物P104(PEO27-PPO61-PEO27)为模板剂合成介孔材料, 研究了介孔材料结构随体系pH 值的变化, 探讨了体系中介观相转变的机理. 研究表明,随着pH 的升高, 发现体系中无机物种和模板剂所组成的介观相发生了转变,由P6mm 的SBA-15(pH=1.51-2.67)2D六角孔道结构转变为3D 蠕虫状孔道的MSU-X(pH=3.93-4.56)结构. 对所得的两种不同种类的硅基材料以γ-胺丙基三乙氧基硅烷(APTES: NH2(CH2)3Si(C2H5O)3)进行表面烷基化改性结果表明, 在同样的条件下, 经过改性后MSU-X类介孔材料孔壁上接枝的烷基数目要远超过SBA-15 类介孔材料.  相似文献   

10.
以硅酸钠、硝酸铈铵为原料,十六烷基三甲基溴化铵为模板剂,通过水热法合成铈掺杂的介孔分子筛CeMCM-41.分别采用X射线粉末衍射(XRD)、透射电子显微镜(TEM)、红外光谱(FT-IR)、紫外-可见分光光度计(UV-Vis)和N2吸附-脱附等技术对产物的晶相、结构、形貌、比表面积和孔径进行表征.同时研究硅铈物质的量比对合成材料结构性能的影响.实验结果表明:水热条件下成功合成出铈掺杂的MCM-41介孔分子筛,其比表面积为480.5~1 295.2m2/g,平均孔径在2.70~6.29 nm之间.随着稀土元素铈的掺杂量的增加,CeMCM-41介孔分子筛的比表面积和孔体积变小,介孔有序性变差.  相似文献   

11.
设计合成两亲性的单季铵盐分子作为助结构导向剂,两亲性分子具有晶体生长抑制剂或者致孔剂作用,最终导向合成多级孔/小晶粒SAPO-34分子筛。助结构导向剂减少Si进入AlPO4骨架,降低分子筛的强酸酸性。相较于传统的SAPO-34分子筛(CS),添加助结构导向剂合成的多级孔SAPO-34颗粒尺寸较小,介孔孔体积较高,强酸酸性较弱,其在甲醇制烯烃反应中的双烯(乙烯和丙烯)选择性提高约4%,催化剂的寿命延长一倍。  相似文献   

12.
Mesostructured silicas and silicates have been synthesized using hydrogels with molar composition: M:26.0SiO2:5.2(C2H5)4NOH:7.5[CH3(CH2)15N(CH3)3]2O:790H2O, where M=0, Zr(OC3H7)4 or Ti(OC4H9)4. In all preparations, colloidal silica (Ludox) was used as the source of silica. The hydrothermal transformation at 110°C of these gels produced solids with the hexagonal structure typical of MCM-41 type materials. The effects of chain length and surfactant terminal alkyl groups on the properties of mesoporous materials containing Ti or Zr, have been investigated by using different surfactants such as cetyl trimethyl ammonium bromide and chloride, cetyl dimethyl ethyl ammonium bromide, and myristyl trimethyl ammonium bromide. When the surfactant's carbonyl chain decreased to 14 from 16 carbon atoms, a reduction in unit cell dimension and average pore diameter was observed in the mesoporous silicas, titaniumsilicates and zirconiumsilicates under study. Replacement of methyl groups with ethyl groups on the surfactant hydrophobic head, had no measurable effects on crystals' properties. However, a surfactant with a bulky aromatic head group, such as cetyl pyridinium chloride, inhibited crystallization. In general, the use of bromide in place of chloride salts yielded more ordered MCM-41 type crystals. The high thermal stability (to 800°C), surface area (1000–1500 m2/g), pore volume (0.90–1.20 cm3/g) and uniform mesoporosity (with pore diameter in the 2.9 nm–3.6 nm range), of these metalsilicates could be of particular interest in the preparation of catalysts requiring siliceous metal supports.  相似文献   

13.
In this paper, mesoporous rod-like SiO2/TiO2 (m-SiO2/TiO2) and mesoporous sphere-like TiO2 (m-TiO2) have been prepared by using a new type Gemini surfactant containing carbonyl groups (GS-A, [(C n H2n + 1)(CH3)2N+(CH2)2-O2C-(CH2)4-CO2-(CH2)2N+(CH3)2(C n H2n + 1)] · 2Br, n = 12) as template at pH ∼ 6 at room temperature. The products are characterized by Fourier transform infrared spectroscopy (FT-IR), scanning electron microscopy (SEM), X-ray diffraction (XRD), and N2 adsorption-desorption. The results indicate that anatase TiO2 exists in both samples and m-SiO2/TiO2 has a higher surface area (741.13 m2/g) than m-TiO2. Moreover, as-synthesized samples show excellent photocatalytic activity for the degradation of methyl red under UV irradiation.  相似文献   

14.
Specific ion/molecule reactions are demonstrated that distinguish the structures of the following isomeric organosilylenium ions: Si(CH3) 3 + and SiH(CH3)(C2H5)+; Si(CH3)2(C2H5)+ and SiH(C2H5) 2 + ; and Si(CH3)2(i?C3H7)+, Si(CH3)2(n?C3H7)+, Si(CH3)(C2H5) 2 + , and Si(CH3)3(π?C2H4)+. Both methanol and isotopically labeled ethene yield structure-specific reactions with these ions. Methanol reacts with alkylsilylenium ions by competitive elimination of a corresponding alkane or dehydrogenation and yields a methoxysilylenium ion. Isotopically labeled ethene reacts specifically with alkylsilylenium ions containing a two-carbon or larger alkyl substituent by displacement of the corresponding olefin and yields an ethylsilylenium ion. Methanol reactions were found to be efficient for all systems, whereas isotopically labeled ethene reaction efficiencies were quite variable, with dialkylsilylenium ions reacting rapidly and trialkylsilylenium ions reacting much more slowly. Mechanisms for these reactions and differences in the kinetics are discussed.  相似文献   

15.
Synthesis and Molecular Structure of the Binuclear tert-Butyliminovanadium(IV) Complexes [(μ-NtC4H9)2V2(CH2CMe3)2X2] (X = OtC4H9, CH2CMe3) Syntheses of the neopentylvanadium(V) compounds tC4H9N?V(CH2CMe3)3?n(OtC4H9)n (n = 0 ( 7 ), 1 ( 6 ), 2) are described. 6 and 7 decompose by irradiation splitting off neopentane and yielding the binuclear diamagnetic neopentylvanadium(IV) complexes [(μ-NtC4H9)2V2(CH2CMe3)2X2] [X = OtC4H9 ( 8 ), CH2CMe3 ( 11 )]. All compounds obtained are characterized by 1H and 51V NMR spectroscopy. 8 has been found by X-ray diffraction analysis to be a binuclear complex with bridging tert-butylimino ligands and a vanadium—vanadium single bond. The complexes tC4H9N?V(CH2C6H5)(OtC4H9)2 and [(μ-NtC4H9)2V2(CH2SiMe3)2(OtC4H9)2] ( 10 ) have been also prepared; the crystal structure of 8 and 10 are nearly identical.  相似文献   

16.
η6-o-Chlorotoluene-η5-cyclopentadienyliron hexafluorophosphate undergoes nucleophilic substitution of the chlorine atom with anions generated (K2CO3/DMF) from methyl thioglycolate, diethyl malonate, dimethyl malonate, methyl acetoacetate and 2,4-pentanedione. The compounds prepared were o-CH3C6H4SCH2CO2CH3FeCp+PF6, o-CH3C6H4CH(CO2C2H5)2FeCp+PF6, o-CH3C6H4CH(CO2CH3)2FeCp+PF6, o-CH3C6H4CH(COCH3)CO2CH3FeCp+PF6 and o-CH3C6H4CH2COCH3FeCp+PF6 . Similarly, the reaction of diethyl malonate, dimethyl malonate, methyl acetoacetate anions and methylamine with η6-2,6-dichlorotoluene-η5-cyclopentadienyliron hexafluorophosphate yielded monosubstitution of one of the chloro groups. The complexes prepared in this study were η6-diethyl(3-chloro-2-methyl) phenylmalonate- η5-cyclopentadienyliron hexafluorophosphate, η6-dimethyl(3-chloro-2-methyl)phenylmalonate-η5-cyclopentadienyliron hexafluorophosphate, η6-methyl(3-chloro-2-methyl)phenylacetoacetate-η5-cyclopentadienyliron hexafluorophosphate and η6-3-chloro(2-methyl-N-methyl)aniline-η5-cyclopentadienyliron hexafluorophosphate. Reaction of η6-2,6-dichlorotoluene-η5-cyclopentadienyliron hexafluorophosphate with excess methanol as well as methyl thioglycolate in the presence of K2CO3 resulted in disubstitution of both chloro groups to yield new complexes, η6-2,6-dimethoxytoluene-η5-cyclopentadienyliron hexafluorophosphate and η6-methyl[(2-methylphenyl)1,3-dithio] diacetate-η55-cyclopentadienyliron hexafluorophosphate, respectively. Complexes o-CH3C6H4CH(CO2C2H5)2FeCp+PF6, o-CH3C6H4CH(CO2CH3)2FeCp+PF6 and o-CH3C6H4CH2 COCH3FeCp+ PF6 react with excess K2CO3 and benzyl bromide in refluxing methylene chloride to give 80–90% yields of complexes o-CH3C6H4C(CH2C6H5)(CO2C2H5)2FeCp+PF6, o-CH3C6H4C(CH2C6H5)(CO2CH3)2FeCp+PF6 and o-CH3C6H4CH(CH2C6H5)COCH3FeCp+PF6, respectively. Reaction of complex, o-CH3C6H4C(CH2C6H5)(CO2C2H5)2FeCp+PF6 with one molar equivalent of t-BuOK followed by acidic work-up gives o-(C2H5CO2CH2)C6H4CH(CO2C2H5)CH2C6H5FeCp+PF6. Similarly, reactions of complexes o-CH3C6H4C(CH2C6H5)(CO2C2H5)2FeCp+PF6 and o-CH3C6H4C(CH2C6H5)(CO2CH3)2FeCp+PF6 with t-BuOK in THF followed by alkylation with methyl iodide gave the new complexes, o-(C2H5O2C(CH3)CH)C6H4CH(CH2C6H5)CO2C2H5FeCp+PF6 and o-(CH3O2C(CH3)CH)C6H4CH(CH2C6H5)CO2CH3FeCp+PF6, respectively. Vacuum sublimation of the new complexes, o-CH3C6H4C(CH2C6H5)(CO2C2H5)2FeCp+PF6 and o-(C2H5O2CCH2)C6H4CH(CH2C6H5)CO2C2H5FeCp+PF6 gives o-CH3C6H4C(CH2C6H5)(CO2C2H5)2 and O-(C2H5O2CCH2)C6H4CH(CH2C6H5)CO2C2H5, respectively.  相似文献   

17.
The CH4 chemical ionization (CI) spectra of several keto-steroids are reported as well as the H2 and C3H8CI spectra of a few keto-steroids. [M + H ? H2O]+ is an abundant ion in the CH4CI spectrum of 5α-androstane-17-one and the water loss from the [M + H]+ ions does not involve the hydrogens on C-18 and only involves the C-16 hydrogens to about 10%. The major loss process has not been determined.3-Keto and 17-Keto steroids are readily distinguished by their CH4CI spectra. The effectiveness of substituents for directing attack by [CH5]+ and [C2H5]+ can be estimated:carboxyl > methoxy ? carbonyl > bromo ? chloro > hydroxy. Significant differences are observed in the H2CI spectra of two 5α-vs. 5β-steroids. Propane CI Spectra are similar to methane CI spectra, but show generally less fragmentation.  相似文献   

18.
Mass spectra of substituted benchrotrenyls RC6H5Cr(CO)3 where R?H, F, CI, I, CH3, OCH3, COOCH3, C2H5, N(CH3)2, NH2, C6H5, C(CH3)3, p-C6H4NH2, CH2C6H5, CH2CH2C6H5), 1,3,5-(CH3)3C6H3Cr(CO)3 and 1,2,3,5-(CH3)4C6H2Cr(CO)3 have been studied. It has been found that for monosubstituted benchrotrenyls there is a linear dependence of the parameter log [Cr]+/[RC6H5Cr]+) on the number of degrees of freedom of the [RC6H5Cr]+ ion. Decarbonylation of the molecular ions is not affected by the nature of the substituent R. The results are interpreted in terms of the quasi-equilibrium theory of mass spectra.  相似文献   

19.
The relative reactivities of CO and CNR ligands with CH3NH2 were investigated in complexes which contained both ligands. Like (C5H5Fe(CO)3+; the (C5H5)Fe(CO)2(CNCH3)+ complex reacts with CH3NH2 to give the carbamoyl complex (C5)Fe(CO)(CNCH3)(CONHCH3); this is a readily reversible reaction. In contrast, (C5H5)Fe(CO)(CNCH3)2+ reacts with CH3NH2 to give the amidinium or carbene complex, (C5H5)Fe(CO)(CNCH3)[C(NHCH3)2]+]. In a slow reaction, (C5H5)Fe(PPh3)(CO)(CNCH3)+ forms the amidinium complex, (C5H5)Fe(PPh3)(CO)[C(NHCH3)2]+. Factors that affect the site of CH3NH2 reaction are discussed. The complexes have been characterized by IR and NMR spectroscopy; a variable temperature NMR study of (C5H5)Fe(CO)(CNCH3)[C(NHCH3)2]+ indicates restricted rotation around the CN bonds of the amidinium ligand.  相似文献   

20.
Reactions of CH3Li, C6H5Li, and C6H5CH2MgCl with [(C5H5)Fe(CO)2Y]+-[B(C6H5)4] [Y  Co, P(C6H5)3, and CS] have been investigated. The organolithium reagents used act either as reducing agents or as nucleophilic reagents towards the cyclopentadienyliron tricarbonyl cation and its thiocarbonyl analogue. Benzyl-magnesium chloride reacts with the cyclopentadienyl ring of [(C5H5)Fe(CO)3]+ and [(C5H5)Fe(CO)2P(C6H5)3]+ producing neutral cyclopentadiene complexes.  相似文献   

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