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1.
用等体积浸渍法制备了SBA-15担载的钒基氧化物催化剂,使用X射线衍射(XRD)分析、氮气吸附、紫外激光拉曼、傅里叶变换红外(FTIR)光谱和紫外-可见漫反射(UV-Vis DRS)光谱对催化剂的结构进行了表征,并评价了催化剂对丙烷选择氧化的活性与选择性.实验结果表明SBA-15载体对丙烷选择氧化的活性优于常规的SiO2载体.SBA-15担载的低载量催化剂是高分散的催化剂体系,在低钒载量(n(V)/n(Si)<2.5%)时,催化剂具有规则的六方介孔结构.低钒载量(n(V)/n(Si)<0.1%)时,隔离四配位的钒氧化物是丙烷选择氧化生成醛类化合物的活性物种;高钒载量(n(V)/n(Si)>2.5%)时,聚合六配位的钒氧化物和微晶钒氧化物是丙烷脱氢或深度氧化的活性物种.  相似文献   

2.
负载型铼催化剂体系与甲醇选择氧化性能的关系   总被引:2,自引:0,他引:2  
以铼酸铵为前驱体,制备了氧化物负载型铼催化剂并研究其甲醇选择氧化反应的催化性能.结果表明,Fe2O3和V2O5等氧化物负载型铼催化剂表现出很高的甲醇选择氧化制备二甲氧基甲烷的催化性能,选择性可达90%~94%(摩尔分数).选择氧化反应活性与铼担载量有关.在α-Fe2O3担载的铼催化剂中,以担载质量分数为1%~3%铼的催化剂活性最高[450mmol/(h·gRe)],而高于3%的铼担载量,单位铼催化活性逐渐下降.XRD,XPS和脉冲反应等结果表明,铼酸铰负载于α-Fe2O3载体上,并于He气氛中焙烧后,所得表面铼物种与担载量有关,当低于单层担载量时以Re6+占主导,而高于单层担载量时则Re6+与Re4+物种共存.  相似文献   

3.
负载型P-Mo-V/SBA-15催化剂上的甲烷选择氧化反应   总被引:3,自引:0,他引:3  
以磷钼钒杂多酸(H5PMo10V2O40)为前驱体、介孔SBA-15为载体, 采用浸渍法制备不同负载量的P-Mo-V氧化物催化剂. 在甲烷选择氧化反应中, 考察了负载量、反应温度、空速等对甲烷转化率和产物选择性的影响. 结果表明, 催化剂对甲烷选择氧化制甲醛具有较高活性, 甲烷转化率随负载量的增大和反应温度的升高而提高, 甲醛的选择性随负载量的增大先升后降. 反应温度为640 ℃、空速为48300 L•kg-1•h-1、氧化物负载量w=2.89%时, 甲醛的时空产率最高(295 g•kgcat-1•h-1). 多种表征表明, 氧化物负载量w≤2.89%时, P-Mo-V氧化物在载体介孔孔道内以高分散形式存在. 催化剂的酸性和氧化还原性质与负载量相关, NH3-TPD和H2-TPR的测试结果表明, 较弱的酸性位和较低还原温度的活性组分有利于甲烷选择氧化制甲醛.  相似文献   

4.
用等体积浸渍法制备了SBA-15担载的钒基(V/SBA-15)和钾修饰的钒基氧化物(K-V/SBA-15)催化剂, 使用氮气吸附、小角X射线衍射(XRD)、紫外-可见漫反射光谱(UV-Vis DRS)和紫外激光拉曼光谱对这些催化剂的结构进行表征, 并评价了这些催化剂对乙烷选择氧化的活性与选择性. 实验结果表明介孔结构SBA-15对乙烷选择氧化的活性优于常规的SiO2; 对于SBA-15担载的V/SBA-15和K-V/SBA-15催化剂, 极低钒担载量(nV:nSi≤0.1:100)时隔离的四配位钒氧化物是乙烷选择氧化生成醛类化合物的活性物种, 高钒担载量(nV:nSi≥2.5:100)时聚合的和微晶态的钒氧化物是乙烷氧化脱氢或深度氧化的活性物种.  相似文献   

5.
将柠檬酸(CA)作为络合剂添加至CeO2-Al2O3复合载体中,并考察了CA对MoO3/CeO2-Al2O3催化剂耐硫甲烷化性能的影响。活性评价结果显示,催化剂活性随柠檬酸添加量的增大而增大,当n(CA)/n(Ce)为3时,CO转化率可达60%。催化剂BET、XRD、H2-TPR及XPS等表征结果表明,在CeO2-Al2O3复合载体中加入CA,可以增大载体及催化剂的比表面积,使Mo物种分散性提高。同时,CA对Ce物种起络合作用,致使催化剂表面Ce元素含量明显增加,进而减弱了活性组分Mo物种与载体间相互作用力,并最终导致了催化剂活性的提升。  相似文献   

6.
CH4与CO2干重整反应对于环境保护和天然气资源的合理利用具有重要意义。SiO2和Al2O3是适用于甲烷干重整反应的两种典型的催化剂载体。为了阐明这两种载体对催化剂性能的影响,本研究采用等体积浸渍法制备了Ni/Al2O3和Ni/SiO2催化剂,并利用BET、TEM、H2-TPR、XRD、TG和Raman等技术对还原和反应后的催化剂进行了表征。结果表明,由于载体的性质不同,Ni基催化剂在甲烷干重整中的催化性能也不同。Ni/SiO2催化剂的初始活性较高,但由于其金属-载体相互作用较弱,催化稳定性较差,在800℃下反应15h其催化活性急剧下降;较弱的金属-载体相互作用使得Ni/SiO2催化剂上的Ni颗粒较大,有利于积炭前驱物种的生成,导致催化剂快速失活。而对于Ni/Al2O3催化剂,金属-载体相互作用较强,Ni颗粒较小,但由于Ni与Al2O3生成了NiAlxOy物种,有效活性位减少,其催化活性相对较低,但催化稳定性较好,干重整反应进行50h其活性保持稳定;Ni与Al2O3之间较强的相互作用有利于形成小且稳定的Ni粒子,能减少积炭,因而具有优异的催化稳定性。  相似文献   

7.
Keggin型钼钒磷杂多酸催化剂上丙烷选择氧化性能的研究   总被引:6,自引:1,他引:5  
李秀凯  雷宇  江桥  赵静  季伟捷  张志炳  陈懿 《化学学报》2005,63(12):1049-1054
系统研究了不同数目V5+取代的钼钒磷杂多酸H3+nPMo12-nVnO40 (n=0~4)催化剂上丙烷选择氧化反应性能. 通过BET, IR, TPR, 紫外-可见光谱等表征手段对催化剂的理化性质进行了考察, 并对催化剂的结构-性能关系进行了初步关联. 在杂多酸的一级结构中, V5+对Mo6+的取代不仅改变了杂多阴离子金属-氧桥的键强以及晶格氧的插入能力, 而且也相应地调变了样品的酸量. 催化剂活性随V5+取代数量的递增而增强; 适宜数量的V5+取代提高了含氧酸产物的选择性, 而过量的V5+取代则导致部分氧化产物的深度氧化. 考察了在Keggin型杂多酸二级结构上引入钒物种的影响, 也即将钒物种(VO)2+作为抗衡离子取代部分质子以调变催化剂的结构与性质. 实验表明, 处于一级结构和二级结构[(VO)2+抗衡离子]中的V在反应中均可离析出少量V2O5物种. 适宜量的(VO)2+物种以及离析出来的少量V2O5物种可能均对催化剂的性能有贡献. 显然, 钒在不同位置的价态变化以及形态的不同, 会导致催化性能的相应改变.  相似文献   

8.
利用硫酸氧钒制备钒炭催化剂用于烟气脱硫。研究发现,负载在活性炭上的硫酸氧钒极易被氧化为五价钒硫酸盐,这些五价钒硫酸盐具有很高的氧化SO2的活性,极大地促进了SO2在活性炭上的脱除。而且,通过煅烧可以将五价钒硫酸盐分解为五价钒氧化物,最佳煅烧温度为500℃,由于煅烧后用于储存硫酸的微孔孔容增加,SO2的吸附容量得到了进一步提高,由此表明,利用硫酸氧钒可以制备传统的V2O5/AC催化剂。为了获得完全氧化的钒物种,对煅烧后的催化剂进行了空气中预氧化,但由于含氧官能团的形成、炭载体的烧蚀以及钒的还原,预氧化不利于脱硫。此外,研究中得到初步证据证明脱硫过程中V2O5/AC催化剂中五价钒氧化物转变成了五价钒硫酸盐,结合五价钒硫酸盐所表现出的氧化SO2的能力,推测SO2在V2O5/AC上的脱除遵循以下机理:五价钒氧化物先转变为五价钒硫酸盐,后者催化氧化SO2为硫酸。  相似文献   

9.
汪小强  欧光南  袁友珠 《化学学报》2004,62(18):1695-1700
研究了若干钒基催化剂在双氧水存在下对甲、乙苯的液相选择性氧化催化性能.结果表明:在乙腈为溶剂的反应体系中,所研究的钒基催化剂包括VPO,VOPO4,V2O5,VO(acac)2和NH4VO3等均表现出以苯甲醛为甲苯选择性氧化主产物和以苯乙酮为乙苯选择氧化主产物的反应结果;从反应活性和主产物选择性来看,按以下顺序递减:VPO>V2O5>VOPO4>VO(acac)2>NH4VO3.对于具有(VO)2P2O7晶相的VPO催化剂,在双氧水存在下对甲苯选择性氧化主产物苯甲醛的最高选择性为58.8%,乙苯选择性氧化主产物苯乙酮的最高选择性为67.8%;其催化性能与P/V比、焙烧条件、双氧水的使用量、反应溶剂等有关.从已有的实验结果推测,钒基催化剂在双氧水存在下的甲、乙苯选择氧化反应与V5+/V4+的"氧化-还原"作用密切相关.  相似文献   

10.
Mg-Fe尖晶石复合氧化物对苯乙烯选择氧化反应的催化性能   总被引:8,自引:0,他引:8  
马宁  乐英红  华伟明  高滋 《化学学报》2004,62(3):262-267
研究了以H2O2为氧化剂时Mg-Fe尖晶石复合氧化物催化剂对苯乙烯选择氧化制苯甲醛反应的催化性能.结果表明,非化学计量比的Mg-Fe尖晶石复合氧化物催化剂的活性优于纯MgFe2O4尖晶石相,苯甲醛产率达到20%左右.在非化学计量比的Mg-Fe尖晶石复合氧化物中掺入适量的Al3+后,可进一步提高催化活性,苯甲醛最高产率达到33.4%.催化剂表征数据揭示,非化学计量比的Mg-Fe和Mg-Fe-Al复合氧化物催化剂是由纳米尺度的铁酸盐尖晶石和α-Fe2O3微晶相构成的.除了非化学计量比尖晶石具有较多的缺陷结构外,α-Fe2O3微晶相的存在也可能是造成非化学计量比催化剂活性高的原因之一.  相似文献   

11.
Characterization of vanadium and titanium oxide supported SBA-15   总被引:2,自引:0,他引:2  
Supported vanadium and titanium oxide catalysts were prepared by adsorption and subsequent calcination of the vanadyl and titanyl acetylacetonate complexes, respectively, on mesoporous SBA-15 by the molecular designed dispersion (MDD) method. Liquid and gas phase depositions at different temperatures were carried out with vanadyl acetylacetonate, and the different results together with those of titanyl acetylacetonate in the liquid phase deposition were discussed. The bonding mechanism, the influence of the metal interaction with the support material, and differences due to the way of deposition and the temperature were investigated by TGA, chemical analysis, FTIR, and Raman spectroscopy. Elevated dissolving temperatures in the liquid phase led to higher final loadings on the SBA-15 without the formation of clusters, even at high loadings. The decomposition of the anchored vanadium and titanium complexes, their thermal stability, and the conversion to the covalently bound VO(x) and TiO(x) species on SBA-15 were studied and investigated by in situ transmission IR spectroscopy. In general, the titanium complex is more reactive than the vanadium complex toward the surface of SBA-15 and has a higher thermal stability. The MDD method of the VO(acac)2 and TiO(acac)2 enables to create a dispersed surface of supported VO(x) and TiO(x), respectively. The structure configurations of VO(x) and TiO(x) oxide catalysts obtained at different metal loadings were studied by Raman spectroscopy. Pore size distributions, XRD, and N2 sorption confirmed the structural stability of these materials after grafting. VO(x)/SBA-15 and TiO(x)/SBA-15 samples, with different metal loadings, were also catalytically tested for the selective catalytic reduction (SCR) of NO with ammonia.  相似文献   

12.
The size of the active phase is one of the most important factors in determining the catalytic behaviour of a heterogeneous catalyst. This Feature Article focuses on the size effects in two types of reactions, i.e., the metal nanoparticle-catalysed dehydrogenation of alcohols and the metal oxide nanocluster-catalysed selective oxidation of hydrocarbons (including the selective oxidation of methane and ethane and the epoxidation of propylene). For Pd or Au nanoparticle-catalysed oxidative or non-oxidative dehydrogenation of alcohols, the size of metal nanoparticles mainly controls the catalytic activity by affecting the activation of reactants (either alcohol or O(2)). The size of oxidic molybdenum species loaded on SBA-15 determines not only the activity but also the selectivity of oxygenates in the selective oxidation of ethane; highly dispersed molybdenum species are suitable for acetaldehyde formation, while molybdenum oxide nanoparticles exhibit higher formaldehyde selectivity. Cu(II) and Fe(III) isolated on mesoporous silica are highly efficient for the selective oxidation of methane to formaldehyde, while the corresponding oxide clusters mainly catalyse the complete oxidation of methane. The lattice oxygen in iron or copper oxide clusters is responsible for the complete oxidation, while the isolated Cu(I) or Fe(II) generated during the reaction can activate molecular oxygen forming active oxygen species for the selective oxidation of methane. Highly dispersed Cu(I) and Fe(II) species also function for the epoxidation of propylene by O(2) and N(2)O, respectively. Alkali metal ions work as promoters for the epoxidation of propylene by enhancing the dispersion of copper or iron species and weakening the acidity.  相似文献   

13.
A series of Ni/SBA-15 catalysts with 5wt% to 15wt% Ni content as well as a series of 12.5%Ni/Cu/SBA-15 catalysts with 1% to 10% copper content were prepared by the impregnation method. The catalytic performance for partial oxidation of methane was investigated in a continuous flow microreactor under atmospheric pressure. The textural and chemical properties of the catalysts were characterized by XRD, TEM, BET and H2-TPR techniques. The results indicated that the catalysts modified with Cu promoter showed better performance than those without modification. For the 12.5%Ni/2.5%/Cu/SBA-15 catalyst, at 850 ◦C the conversion of CH4 reached 97.9% and the selectivity of CO and H2 reached 98.0% and 96.0%, respectively. In XRD patterns of the Ni/Cu/SBA-15 catalyst with 7.5 to 10% Cu contents there were CuO characteristic peaks beside NiO characteristic peaks. The mesoporous structure of SBA-15 was retained in all of the catalysts. TPR analysis of the catalysts revealed that a strong interaction between Ni, Cu promoter and SBA-15 support may be existed. This interaction enhanced significantly the redox properties of the catalysts resulting in the higher catalytic activity.  相似文献   

14.
以SBA-15、六角介孔二氧化硅(HMS)和SnO2为载体,通过浸渍法合成了含钨负载型催化剂,并考察了三种催化剂在环氧环己烷选择氧化制备己二酸反应中的催化性能.通过X射线衍射(XRD),透射电镜/场发射透射电镜(TEM/FETEM),紫外-可见漫反射光谱(UV-Vis DRS),拉曼(Raman)光谱,X射线光电子能谱(XPS)以及傅里叶变换红外(FTIR)光谱等手段对各种催化剂的结构进行表征.结果表明,载体与催化剂的性能有密切的关系.以SnO2为载体的WO3/SnO2催化剂活性最高,其次是WO3/HMS催化剂,WO3/SBA-15催化剂的活性最差.XRD分析显示WO3/SnO2催化剂中氧化钨物种的晶化程度最低,TEM和XPS结果表明氧化钨物种在WO3/SnO2催化剂表面高度分散并且粒径尺寸很小(约2 nm),UV-Vis DRS结果表明在WO3/SnO2催化剂中存在孤立[WO4]四面体和低聚态的钨物种,这些物种的存在可能是WO3/SnO2催化剂具有高活性的主要原因.此外,WO3/SnO2催化剂可以重复使用多次,6次反应后己二酸(AA)得率仍然保持在80%以上,说明氧化钨物种与SnO2载体间存在强烈的相互作用,从而提高了催化剂的稳定性.  相似文献   

15.
以原位还原的方法一步合成了Ag/SBA-15复合催化剂,通过粉末XRD、TEM、ICP-AES和低温氮气吸附-脱附等手段对样品进行了表征.考察了不同催化剂对CO催化活性的影响,结果表明当金属纳米的尺寸大小为6~8nm左右,银的含量为6.86%时(Ag/SBA-15-3)的催化活性最高,在120℃时就可使CO完全氧化,可以重复使用,在100%的转化温度时保持200min转化率仍不降低.  相似文献   

16.
利用程序升温还原(TPR)方法,研究了甲烷部分氧化制甲醛催化剂MoO3/SiO2及添加金属氧化物的MoO3·MxOy/SiO2(M=V、Fe、Ni、Cr、Cu)催化剂上,活性组分在载体上的分散及MoO3与MxOy的相互作用.发现钼含量的提高不利于MoO3在SiO2上的分散,催化剂表面晶相MoO3随钼含量的提高而增多.SiO2上担载的活性组分有一个最佳值,对应于最佳催化活性.MoO3·MxOy/SiO2催化剂中MoO3与MxOy发生了不同的相互作用,影响催化剂表面的活性氧物种,导致它们对甲烷氧化活性和甲醛选择性的不同.MoO3·V2O5/SiO2是比较好的催化剂,且V2O5添加量有最佳值,对应甲烷氧化制甲醛也有较高的活性和选择性.  相似文献   

17.
The partial oxidation of methane to formaldehyde was studied over different silica-supported metal oxide catalysts. The results show thatMoO3/SiO2 is the most selective catalyst among those studied, P2O5 exhibit a Promoting effect to the silica supported transition metal oxide catalysts for the formation of formaldehyde and a small amount of MoO3 can improve the selective properties of these catalysts.  相似文献   

18.
FeOx-SiO2 catalysts prepared by a sol-gel method were studied for the selective oxidation of methane by oxygen. A single-pass formaldehyde yield of 2.0% was obtained over the FeOx-SiO2 with an iron content of 0.5 wt% at 898 K. This 0.5 wt% FeOx-SiO2 catalyst demonstrated significantly higher catalytic performances than the 0.5 wt% FeOx/SiO2 prepared by an impregnation method. The correlation between the catalytic performances and the characterizations with UV-Vis and H2-TPR suggested that the higher dispersion of iron species in the catalyst prepared by the sol-gel method was responsible for its higher catalytic activity for formaldehyde formation. The modification of the FeOx-SiO2 by phosphorus enhanced the formaldehyde selectivity, and a single-pass formaldehyde yield of 2.4% could be attained over a P-FeOx-SiO2 catalyst (P/Fe = 0.5) at 898 K. Raman spectroscopic measurements indicated the formation of FePO4 nanoclusters in this catalyst, which were more selective toward formaldehyde formation.  相似文献   

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