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1.
以正硅酸乙酯(TEOS)、钛酸丁酯(TBOT)、四丙基氢氧化铵(TPAOH)分别作硅源、钛源及模板剂,用干胶转化法合成TS-1分子筛.考察了TEOS水解时的水硅比、水解温度、除醇条件、晶化时间及磷酸处理对TS-1分子筛性能的影响.采用XRD、SEM、IR、ICP及N2吸附等手段对样品进行表征,同时以环己酮氨肟化反应考察样品的催化活性.结果表明,使用少量的TPAOH(n(TPAOH)/n(SiO2)=0.15)即可得到性能较好的TS-1,而用磷酸对所得TS-1分子筛处理则能进一步改善TS-1分子筛的性能.当n(SiO2):n(TPAOH):n(H2O)=1:0.15:16时在20℃下水解TEOS,钛硅溶液能自行胶凝,将所得凝胶在75℃下除醇至失重率达65%左右,晶化6d得到TS-1分子筛,产品经磷酸改性后,环己酮转化率达到99.5%,环己酮肟选择性达到98.7%,催化活性与高TPAOH用量合成的TS-1接近,而TPAOH的用量大大降低.  相似文献   

2.
赵松  谢伟  刘月明  吴鹏 《催化学报》2011,32(1):179-183
在液相连续赞浆床反应器中,Ti-MW WIH202体系表现出较高的催化丁酮氨肪化制备丁酮肠的活性,详细考察了各反应条件对Ti-MWW分子筛催化性能的影响.结果表明,在优化的反应条件下,丁酮转化率和丁酮肪选择性分别达95%和99%以上;均优于传统的铁硅分子筛TS-1,且稳定性也更高.  相似文献   

3.
 钛硅分子筛/H2O2 体系催化酮氨肟化反应合成肟的过程中, 产物肟的反应行为直接影响氨肟化过程的反应效率和操作稳定性. 在 Ti-MWW/H2O2 体系催化丁酮氨肟化反应中研究了产物丁酮肟的反应行为, 发现 Ti-MWW 和 H2O2 的共同作用促使丁酮肟发生水解, 生成丁酮和氮氧化物, 使得反应体系从碱性变成了酸性. TS-1/H2O2 体系及产物环己酮肟均存在类似的现象.  相似文献   

4.
无机SiO2-TiO2前驱体体系合成高性能TS-1分子筛   总被引:1,自引:0,他引:1  
 在热处理条件下,使Ti(SO4)2在多孔硅胶表面自发分散形成具有类似于钛硅分子筛催化活性中心结构单元的Si-O-Ti键的SiO2 -TiO2前驱体,将该前驱体在模板剂四丙基氢氧化铵的作用下水热晶化得到了钛硅分子筛TS-1. X射线衍射、红外光谱和扫描电镜表征表明, TS-1分子筛晶化完全,钛原子已进入TS-1分子筛骨架. 苯酚羟基化反应测试结果表明,前驱体的热处理温度对合成的TS-1分子筛的催化性能影响很大,处理温度以450 ℃为宜.  相似文献   

5.
钛硅分子筛催化1-丁烯环氧化研究   总被引:3,自引:1,他引:2  
自1983年Taramasso等报导TS-1的合成以来,钛硅分子筛的合成及应用一直是分子筛催化领域的热点。经典TS-1合成方法采用四丙基氢氧化铵(TPAOH)为模板剂,合成成本较高、条件苛刻,限制了其应用。用四丙基溴化铵(TPABr)为模板剂代替TPAOH,能够成功地合成TS-1。不同孔道结构的钛硅分子筛,如Ti-β、Ti-MCM-41、Ti-HMS等弥补了TS-1较小孔径的缺点,进一步扩大了钛硅分子筛的应用。本文以不同合成方法得到的TS-1及中孔Ti—HMS为催化剂,双氧水为氧化剂,1-丁烯环氧化合成1,2-环氧丁烷,研究了不同钛硅分子筛对1-丁烯环氧化反应的催化性能。  相似文献   

6.
将硅胶微球浸渍于钛硅分子筛(TS-1)合成液中,经晶化、焙烧制得负载TS-1分子筛硅胶微球催化剂。 用XRD、IR和SEM测试技术对其进行表征,将其用于过氧化氢氧化苯合成苯酚的反应中。 结果显示,TS-1分子筛能够很好地负载于硅胶表面,晶化温度160 ℃,晶化时间72 h,焙烧温度550 ℃,焙烧时间6 h时,获得的催化剂显示良好的催化性能。 在苯和H2O2初始原料量分别为0.5和0.1 mol、催化剂加入量为8 g、反应温度为60 ℃条件下,经过3 h的反应,苯的转化率达到10.32%,苯酚选择性达到97.12%。 9次重复使用后的苯转化率为9.42%,苯酚选择性为93.14%。  相似文献   

7.
肖沙  周继承 《分子催化》2007,21(5):458-462
采用无机钛硅原料体系合成出了TS-1分子筛,并对TS-1分子筛催化氯丙烯环氧化反应进行了研究.在以甲醇为溶剂的体系中考察了反应时间、反应温度、催化剂用量、氯丙烯与双氧水的摩尔比对反应的影响,得到了无机钛硅原料体系合成的TS-1催化氯丙烯环氧化反应的最优条件:反应时间为60 min,反应温度为45℃,催化剂用量为22.5 g L-1,氯丙烯与双氧水的摩尔比n(AC):n(H2O2)=1.8,并对无机钛硅原料体系合成的TS-1进行了修饰改性,评价了其催化性能.  相似文献   

8.
以氨水做碱源胶态晶种导向法合成小晶粒TS-1分子筛   总被引:1,自引:0,他引:1  
TS-1分子筛具有MFI拓扑结构,因其独特的择形选择性和优异的催化氧化能力而广受关注.最早报道的TS-1合成方法采用大量四丙基氢氧化铵(TPAOH)作为有机结构导向剂, TPAOH价格昂贵,制约着TS-1分子筛大规模应用.开发廉价、环境友好的合成工艺是TS-1分子筛合成领域的重要课题.以价格相对较低的四丙基溴化铵(TPABr)代替TPAOH做有机结构导向剂,以氨水为碱源可合成TS-1分子筛,但产物晶粒尺寸远远大于以TPAOH做模板的合成结果,影响TS-1分子筛的传质和催化性能.因此,人们对该法进行了改进,选用有机胺作为碱源, TPABr为结构导向剂合成TS-1分子筛,但始终未能将其晶粒尺寸降至1μm以下.在合成体系中引入预先合成的TS-1分子筛或TS-1胶态前驱体作为晶种可以促进成核,缩短成核诱导期,有利于获得小晶粒尺寸的TS-1分子筛.此类方法往往需要辅助以大量有机胺等结构导向剂;胶态TS-1前驱体的制备需要特别小心以保证晶种中Ti的四配位状态,通常需要经历低温水解钛酸四丁酯(TBOT)和高温加热除醇等繁琐步骤.而胶态纯硅silicalite-1制备则相对简单,且已广泛用于导向合成同样具有MFI结构的ZSM-5沸石,但目前鲜有以silicalite-1做晶种合成TS-1分子筛的报道.基于此,本文以纯硅胶态silicalite-1为晶种,以氨水做碱源,辅助以少量TPABr做导向剂,合成了小晶粒TS-1分子筛,并以正己烯环氧化和环己酮氨肟化做探针反应考察了所得TS-1分子筛的催化氧化性能. X射线衍射结果表明,当晶种中SiO2占合成体系中SiO2的10 wt%(晶种引入TPAOH, TPAOH/SiO2=0.35),加入TPABr (TPABr/SiO2=0.03)做辅助结构导向剂,即合成体系中总(TPAOH+TPABr)/SiO2摩尔比低至0.07时,所得样品依然具有良好的结晶度.扫描电镜照片观察不到无定形物存在;晶种中SiO2占合成体系中SiO2的10 wt%时,所得TS-1晶粒尺寸约为250 nm ×150 nm ×50 nm;其他条件不变,胶态晶种用量增加到15 wt%时,初级晶粒尺寸基本保持不变,晶粒-晶粒之间交叉生长,形成孪生形貌;继续增加胶态晶种用量至20 wt%时,晶粒尺寸下降至仅100 nm左右;而用20 wt%胶态晶种所含相同量的TPAOH来代替胶态晶种,得到样品呈近10μm的大块状.与之对应的是,胶态silicalite-1晶种导向得到的小晶粒TS-1分子筛具有比直接用TPAOH得到的大块状样品更大的外比表面积和堆积孔体积.分析结果显示所得TS-1分子筛的体相TiO2/SiO2比在41–43.红外光谱和紫外可见光谱结果表明,胶态晶种导向法所得TS-1分子筛中的Ti主要以四配位状态存在,而直接用TPAOH合成的大块状样品则呈现显著骨架外Ti吸收峰,说明胶态晶种有助于Ti物种进入分子筛骨架.在催化正己烯环氧化反应时,用胶态silicalite-1晶种导向得到的小晶粒TS-1分子筛表现出与大块状TS-1相似的催化性能;而以环己酮氨肟化做探针反应时,小晶粒TS-1分子筛因具有外比表面积大和扩散路径短等优点而表现出远远高于大块状TS-1分子筛的催化活性.但与文献报道的相同SiO2/TiO2比的TS-1分子筛比较,本文所得小晶粒TS-1分子筛催化正己烯环氧化的活性略差.提高该小晶粒TS-1分子筛正己烯环氧化活性和建立构-效关系是下一步工作的重点.  相似文献   

9.
合成条件对TS-1结构及其催化氯丙烯环氧化的影响   总被引:1,自引:0,他引:1  
周颖  王莅  米镇涛 《分子催化》2005,19(6):468-472
采用水热法合成了TS-1分子筛,根据XRD、FT-IR、FT-Raman和UV-Vis的表征结果计算了TS-1的相对结晶度和骨架钛相对含量,并以氯丙烯环氧化反应为探针反应,研究了合成条件对TS-1的结构和催化性能的影响,结果表明,TS-1的结晶度随合成液中Si/Ti比和TPAOH/Si比的增大呈先增大后减小的趋势,TS-1的骨架钛相对含量也随合成液中钛含量的减少呈先增大后减小的趋势,随TPAOH含量的增加TS-1的骨架钛相对含量和非骨架钛含量一直增加,且非骨架钛的类型有所改变.具有较高结晶度和骨架钛含量及较低非骨架钛含量的TS-1的催化性能较好.较好的氯丙烯的转化率和环氧氯丙烷的选择性分别为92.1%和87.5%.  相似文献   

10.
以丙酮肟为原料,在改性TS-1(钛硅分子筛)催化剂催化下,可用H2O2氧化偶联合成2,3-二甲基-2,3-二硝基丁烷(DMNB).在此基础上以丙酮为原料,在改性TS-1催化剂催化下,一锅法进行丙酮氨肟化和氧化偶联反应可制备收率43.2%的DMNB.该方法简便易操作,操作安全.产物结构经1H NMR,13C NMR表征.  相似文献   

11.
The reactions of N-substituted hydroxylamines with alkenals serve as a method for the synthesis of the corresponding 2-substituted 3(5)-hydroxyisoxazolidines. The reaction pathway is determined by the nature of the substituent attached to the nitrogen atom. Ring-chain isomerism has been detected in these newly obtained compoundsTranslated from Khimiya Geterotsiklicheskikh Soedinenii, No. 9, pp. 1270–1276, September, 1987.  相似文献   

12.
Triazenide [M(eta2-1,3-ArNNNAr)P4]BPh4 [M = Ru, Os; Ar = Ph, p-tolyl; P = P(OMe)3, P(OEt)3, PPh(OEt)2] complexes were prepared by allowing triflate [M(kappa2-OTf)P4]OTf species to react first with 1,3-ArN=NN(H)Ar triazene and then with an excess of triethylamine. Alternatively, ruthenium triazenide [Ru(eta2-1,3-ArNNNAr)P4]BPh4 derivatives were obtained by reacting hydride [RuH(eta2-H2)P4]+ and RuH(kappa1-OTf)P4 compounds with 1,3-diaryltriazene. The complexes were characterized by spectroscopy and X-ray crystallography of the [Ru(eta2-1,3-PhNNNPh){P(OEt)3}4]BPh4 derivative. Hydride triazene [OsH(eta1-1,3-ArN=NN(H)Ar)P4]BPh4 [P = P(OEt)3, PPh(OEt)2; Ar = Ph, p-tolyl] and [RuH{eta1-1,3-p-tolyl-N=NN(H)-p-tolyl}{PPh(OEt)2}4]BPh4 derivatives were prepared by allowing kappa1-triflate MH(kappa1-OTf)P4 to react with 1,3-diaryltriazene. The [Os(kappa1-OTf){eta1-1,3-PhN=NN(H)Ph}{P(OEt)3}4]BPh4 intermediate was also obtained. Variable-temperature NMR studies were carried out using 15N-labeled triazene complexes prepared from the 1,3-Ph15N=N15N(H)Ph ligand. Osmium dihydrogen [OsH(eta2-H2)P4]BPh4 complexes [P = P(OEt)3, PPh(OEt)2] react with 1,3-ArN=NN(H)Ar triazene to give the hydride-diazene [OsH(ArN=NH)P4]BPh4 derivatives. The X-ray crystal structure determination of the [OsH(PhN=NH){PPh(OEt)2}4]BPh4 complex is reported. A reaction path to explain the formation of the diazene complexes is also reported.  相似文献   

13.
14.
Conclusions The mass and NMR spectra of haplophyllidine, perforine, and their derivatives have been studied. The influence of the open and cyclic forms of the molecular ion on the nature of the fragmentation has been discussed. The main routes of fragmentation of the compounds considered are due to the presence of substituents at C8 and C4.Khimiya Prirodnykh Soedinenii, Vol. 5, No. 4, pp. 273–279, 1969  相似文献   

15.
The values of activation parameters in uncured and cured epoxy resins, rubbers, and blends thereof are investigated. The dependences of activation energy and adhesion strength of epoxy-rubber compositions on rubber content are determined. The correlation of adhesion and activation energy values for polyurethane rubber and epoxy-rubber compositions is shown.  相似文献   

16.
Aroyl- and acetylhydrazones of acet- (I) and benzaldehydes (IV) and benzoylhydrazones of acet- (II) and benzaldehydes (III) were studied by x-ray structural and quantum-chemical methods in order to establish their structures. Compund (I) was the EEZ structure in the crystal. Calculations and spectral data showed that the EEE form occurs in nonpolar solvents and in the gas phase. According to crystallographic data molecules (I)–(IV) are the E-isomers (relative to the N-N bond) and the hydrazone fragments are planar. Intermolecular N-H...O H-bonds from in the crystals. The data obtained suggest that the majority of acylhydrazones are conformationally rigid on dissolution although exceptions do occur. Apparently the reasons for the difference of acetyl- and benzoylhydrazones in electrocarboxylation reactions are electronic and not steric factors.Translated from Izvestiya Akademii Nauk SSSR, Seriya Khimicheskaya, No. 1, pp. 75–81, January, 1991.  相似文献   

17.
Reaction of the proligand Ph2PN(SiMe3)2 (L1) with WCl6 gives the oligomeric phosphazene complex [WCl4(NPPh2)]n, 1 and subsequent reaction with PMe2Ph or NBu4Cl gives [WCl4(NPPh2)(PMe2Ph)] (2) or [WCl5(NPPh2)][NBu4] (3), respectively. DF calculations on [WCl5(NPPh2)][NBu4] show a W=N double bond (1.756 A) and a P-N bond distance of 1.701 A, which combined with the geometry about the P atom suggests, there is no P-N multiple bonding. Reaction of L1 with [ReOX3(PPh3)2] in MeCN (X = Cl or Br) gives [ReX2(NC(CH3)P(O)Ph2)(MeCN)(PPh3)](X = Cl, 4, X = Br, 5) which contains the new phosphorylketimido ligand. It is bound to the rhenium centre with a virtually linear Re-N-C arrangement (Re-N-C angle = 176.6 degrees, when X = Cl) and there is multiple bonding between Re and N (Re-N = 1.809(7) A when X = Cl). The proligand Ph2PNHNMe2(L2H) reacts with [(C5H5)TiCl3] to give [(C5H5)TiCl2(Me2NNPPh2)] (6). An X-ray crystal structure of the complex shows the ligand (L2) is bound by both nitrogen atoms. Reaction of the proligands Ph2PNHNR2[R2 = Me2 (L2H), -(CH2CH2)2NCH3 (L3H), (CH2CH2)2CH2 (L4H)] with [{RuCl(mu-Cl)(eta6-p-MeC6H4iPr)}2] gave [RuCl2(eta6-p-MeC6H4iPr)L] {L = L2H (7), L3H (8), L4H (9)}. The X-ray crystal structures of 7-9 confirmed that the phosphinohydrazine ligand is neutral and bound via the phosphorus only. Reaction of complexes 7-9 with AgBF4 resulted in chloride ion abstraction and the formation of the cationic species [RuCl(6-p-MeC6H4iPr)(L)]+ BF4- {(L = L2H (10), L3H (11), L4H (12)}. Finally, reaction of complex 6 with [{RuCl(mu-Cl)(eta6-p-MeC6H4iPr)}2] gave the binuclear species [(eta6-p-MeC6H4iPr)Cl2Ru(mu2,eta3-Ph2PNNMe2)TiCl2(C5H5)], 13.  相似文献   

18.
朱劲波  马立群  梁飞  苗迎春  王立民 《应用化学》2015,32(11):1221-1230
Ti-V基储氢合金在室温、常压下即可表现出良好的储氢特性,且质量储氢容量明显高于传统AB5型储氢合金,从而在氢气的精制和回收、运输和储存及热泵等方面有较早的应用。 此外,在混合气体分离、核反应堆中处理氢的同位素、镍氢电池及燃料电池负极材料等方面也得到了广泛的研究与关注。 基于目前Ti-V基储氢合金的研究现状,概述了该类合金的优势、限制性因素(包括成因)及改性手段。 此外,为了进一步理解Ti-V基合金储氢机理、构建合金组分与储氢特性之间的对应关系,本工作重点围绕Ti-V基储氢合金及其氢化物的结构、组分优化设计展开综述,并对其未来研究方向做出展望。  相似文献   

19.
Chlorine dioxide oxidation of cysteine (CSH) is investigated under pseudo-first-order conditions (with excess CSH) in buffered aqueous solutions, p[H+] 2.7-9.5 at 25.0 degrees C. The rates of chlorine dioxide decay are first order in both ClO2 and CSH concentrations and increase rapidly as the pH increases. The proposed mechanism is an electron transfer from CS- to ClO2 (1.03 x 10(8) M(-1) s(-1)) with a subsequent rapid reaction of the CS* radical and a second ClO2 to form a cysteinyl-ClO2 adduct (CSOClO). This highly reactive adduct decays via two pathways. In acidic solutions, it hydrolyzes to give CSO(2)H (sulfinic acid) and HOCl, which in turn rapidly react to form CSO3H (cysteic acid) and Cl-. As the pH increases, the (CSOClO) adduct reacts with CS- by a second pathway to form cystine (CSSC) and chlorite ion (ClO2-). The reaction stoichiometry changes from 6 ClO2:5 CSH at low pH to 2 ClO2:10 CSH at high pH. The ClO2 oxidation of glutathione anion (GS-) is also rapid with a second-order rate constant of 1.40 x 10(8) M(-1) s(-1). The reaction of ClO2 with CSSC is 7 orders of magnitude slower than the corresponding reaction with cysteinyl anion (CS-) at pH 6.7. Chlorite ion reacts with CSH; however, at p[H+] 6.7, the observed rate of this reaction is slower than the ClO2/CSH reaction by 6 orders of magnitude. Chlorite ion oxidizes CSH while being reduced to HOCl, which in turn reacts rapidly with CSH to form Cl-. The reaction products are CSSC and CSO3H with a pH-dependent distribution similar to the ClO2/CSH system.  相似文献   

20.
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