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1.
以HZSM-5沸石分子筛为载体,尿素为沉淀剂,采用常压沉积-沉淀法和负压沉积-沉淀法制备了系列Au/HZSM-5沸石催化剂并采用常规催化剂表征方法对其进行了表征.用脉冲微反装置评价了纯正丁烷(99.9%)在氢型和金改性的纳米HZSM-5催化剂上的反应活性和烯烃选择性.结果表明,在550℃下,负压沉积-沉淀法制备的不同金负载量的纳米HZSM-5催化剂上的转化率和烯烃选择性都远高于常压沉积沉淀法制备的催化剂.改性量为2.0%的Au/HZSM-5-A(负压)催化剂正丁烷转化率达到了58.0%、烯烃选择性为57.2%.脱氢和脱甲基活化是正丁烷的重要活化方式,也是影响其烯烃选择性的主要因素.金改性在提高正丁烷转化率的同时,也促进了正丁烷的脱氢和脱甲基活化.纳米HZSM-5因晶粒度小,孔道短和微孔扩散阻力低而有利于正丁烷转化.负压有利于清除HZSM-5内部的无定型杂质和脱气净化处理,有利于金的负载量和分散度.  相似文献   

2.
采用沉积沉淀和浸渍法制备了Au-Zn组合改性HZSM-5催化剂.并且对比研究了HZSM-5,Au/HZSM-5,Zn/HZSM-5和Au-Zn/HZSM-5催化剂的性质和催化性能.采用UV-Vis和XPS表征揭示出Au-Zn/HZSM-5催化剂中Au物种与Zn物种的相互作用.正丁烷探针反应结果表明,在Zn/HZSM-5催化剂中引入Au有效地提高了正丁烷的脱氢芳构化性能,同时抑制了正丁烷在Zn活性中心上的氢解副反应.在相同条件下,与Zn/HZSM-5催化剂相比,正丁烷转化率由49.1%增加到70.8%,烯烃和芳烃产物总选择性由57%增加到61.98%,干气的选择性由31%降低至28.4%.上述结果表明,Au-Zn/HZSM-5催化剂在轻烃芳构化反应中具有良好的催化性能.  相似文献   

3.
采用负压沉积沉淀法制备了负载型Au/HZSM-5催化剂,采用X射线衍射(XRD)、透射电镜(TEM)、X射线光电子能谱(XPS)、NH3-TPD、紫外可见漫反射(UV-vis)等技术对催化剂进行了表征分析,并考察了催化剂对正丁烷裂解性能的影响。结果表明,Au金属成功负载到HZSM-5催化剂上,并且金颗粒的尺寸受负载量的影响,其中1.0%Au/HZSM-5催化剂中的金颗粒粒径最小,约为5~10nm。钾离子作为一种碱性离子可以调节载体酸性,随着K离子的引入xK-Au/HZSM-5催化剂的酸性逐渐降低,使Au0的电子结合能更高。相对于HZSM-5,2.0Au/HZSM-5催化剂对于正丁烷的转化率从13.1%提升到了37.5%,对丙烯的选择性从17.2%提升到了52.5%。随着K离子的引入,催化剂对于丁烯以及异丁烷的选择性有所提高,当K离子负荷为0.08%时,对丁烯的选择性从3.8%提高到36.9%,负荷为0.1%时,对异丁烷的选择性由2.8%提升到51.8%。但原料转化率低于2.0Au/HZSM-5,这可能与K的加入降低催化剂酸改性有关。此外通过研究Au/HZSM-5用K+修饰得知Au+离子是Au/HZSM-5催化剂转化正丁烷主要活性中心。  相似文献   

4.
采用脉冲微反装置评价了纯正丁烷(原料I)、含有少量异丁烷的混合丁烷(原料Ⅱ)和富含异丁烷的混合丁烷(原料Ⅲ)在锌改性的纳米HZSM-5催化剂上的反应性能.通过红外吸附正丁烷羟基谱图,研究了Zn/HZSM-5催化剂的活性中心.结果表明,反应温度为550℃时,两种混合丁烷在催化剂上的转化率和芳构化选择性都远高于纯正丁烷.即异丁烷比例越高,反应效果越好,说明二者共存时,异丁烷在竞争反应中抑制了正丁烷的转化.另外,芳烃选择性均随Zn负载量的增加而增加.这是因为异丁烷在酸中心作用下脱氢生成叔碳正离子的能力高.而正丁烷的活化方式可能同时存在脱氢活化和脱甲基活化.因此,以工业碳四饱和烃为芳构化原料时,正丁烷和异丁烷可不必分离,直接以混合原料进行芳构化反应.  相似文献   

5.
采用脉冲微反装置评价了纯正丁烷、含有不同比例异丁烷的混合丁烷在Au改性的纳米HZSM-5催化剂上的反应活性和异构化选择性。结果表明,在300℃时,载金量为1.31%的催化剂上纯正丁烷原料的转化率可达7.0%,异丁烷选择性可达80%以上。相比之下,在纳米HZSM-5载体上正丁烷的转化率只有0.55%,异丁烷选择性仅为11.67%。在Au负载量为0.12%~1.91%,随着Au负载量的增加,正丁烷转化率先增后减,异丁烷选择性在低负载量时增加明显。在反应温度低于400℃时,纯正丁烷在载金催化剂上主要发生异构化反应;高于400℃时,主要发生裂解和芳构化等反应,即400℃是正丁烷在脉冲微反条件下异构化和裂解等反应的分水岭。另外,混合丁烷的组成对正丁烷异构化反应有一定影响,但在适当温度下正丁烷异构化时裂解产物很少,表现出金属-酸双功能催化特征。Au+在反应中发挥了脱氢和加氢作用。  相似文献   

6.
 采用HNO3溶液对HZSM-5分子筛进行预处理,并以处理后的分子筛为载体制备了Mo/HZSM-5 催化剂. 结果表明,改性的Mo/HZSM-5催化剂在甲烷无氧脱氢芳构化反应中表现出很好的稳定性,显著地抑制了积炭物种在催化剂表面的形成. SEM,XRD和1H MAS NMR等表征结果表明,酸处理在一定程度上降低了HZSM-5分子筛的结晶度,使部分Al物种脱离骨架结构,迁移到骨架外形成新的表面Al羟基,从而使HZSM-5分子筛上B酸中心的数目明显减少. 未经改性的Mo/HZSM-5催化剂表面,平均每个晶胞中有1.12个B酸位,而改性的Mo/HZSM-5催化剂表面,平均每个晶胞中仅有0.88个B酸位. 这表明过多的酸性位存留在催化剂上会引起积炭的生成,降低催化剂的稳定性.  相似文献   

7.
胥月兵  陆江银  王吉德 《化学进展》2007,19(10):1481-1487
综述了对正丁烷脱氢制备正丁烯的催化剂体系,包括有氧脱氢中钒基催化剂、钼酸盐系列和焦磷酸盐系列催化剂;催化脱氢中贵金属Pt系催化剂、以ZSM-5分子筛为载体的催化剂以及膜反应器。探讨了正丁烷脱氢动力学,并在Mars-van Krevlen和 Eley-Rideal机理模型动力学基础上归纳了正丁烷氧化脱氢及直接脱氢的机理。讨论了正丁烷催化剂的影响因素,比较了各类催化剂的特点并对其进行展望,认为ZSM-5分子筛将可能成为正丁烷脱氢制正丁烯的新的研究热点。  相似文献   

8.
以具有酸性特性的HZSM-5分子筛为载体,结合金属本身具有的羰基化活性,可以更好的提高羰基化反应效率。采用负压沉积沉淀法对HZSM-5催化剂进行Pt、Pd、Cu、Au、Zn改性,制备不同酸度的催化剂。利用X射线衍射、NH3程序升温脱附、吡啶吸附FTIR、N2吸附-脱附和X射线荧光分析研究了不同金属对催化剂物理化学性质及不同负载型HZSM-5催化剂对甲醇羰基化产物的分布和产率的影响。结果表明,不同金属的引入对HZSM-5催化剂的比表面积、孔径和孔体积影响较小,但明显地改变了催化剂表面的酸强度。Pt、Au、Zn和Cu改性后的催化剂更有利于甲醇羰基化反应的进行,其中Cu/HZSM-5催化剂在400℃的甲醇转化率高达90.2%,比HZSM-5催化剂的甲醇转化率高12%,但目标产物的选择性比Pt/HZSM-5及Au/HZSM-5的低。总的来看,金属的引入改变了催化剂表面Brønsted酸(B酸)和Lewis酸(L酸)中心的数量,甲醇的转化率随总酸量的增加而增加,催化剂表面B酸与L酸的比例在0.3~0.5时,催化剂表现出更好的羰基化作用。  相似文献   

9.
甲醛是一种常见的室内空气污染物,人们针对其消除已经做了大量的研究工作.催化氧化法是脱除挥发性有机物的一种重要方法,能在较低温度下通过催化剂作用将甲醛完全氧化为无毒的CO2和H2O.所用催化剂主要为负载型贵金属催
  化剂和非贵金属催化剂,但只有担载贵金属Pt或Pd的催化剂可在室温下将甲醛完全氧化,而非贵金属一般则需要较高的温度. Au催化剂是近年来催化领域的一个研究热点,但是关于纳米Au催化剂室温消除甲醛的研究较少.本课题组前期研究发现,以可还原性氧化物(CeO2, FeOx)为载体负载的Au催化剂具有优异的室温氧化甲醛活性;并且突破以可还原性载体负载金的传统思路,首次发现“惰性载体”γ-Al2O3,负载的金催化剂在室温、有水条件下具有优异的甲醛氧化活性.本文对比了还原性氧化物(CeO2, FeOx)和非还原性氧化物(Al2O3, SiO2和HSZM-5)载体负载金催化剂,研究了载体氧化还原性质对负载金催化剂在高空速(600000 ml/(g·s))条件下室温催化氧化甲醛的活性和稳定性影响.结果表明,在室温、高空速且相对湿度为50%的条件下, Au/Al2O3催化剂的初活性最高,且较为稳定. Au/SiO2和Au/HZSM-5催化剂的初活性虽然较高,但很快失活.而还原性氧化物载体(CeO2, FeOx)负载的金催化剂初活性较低,但是稳定性较好.通过电镜对负载金催化剂表面Au粒子大小的表征,并将粒子尺寸与负载金催化剂室温氧化甲醛初活性相关联,它与催化氧化甲醛反应速率成线性关系. Au粒子尺寸较小的催化剂(Au/Al2O3和Au/SiO2),在高空速条件下具有更高的氧化甲醛活性,而Au粒子尺寸较大的Au/FeOx催化剂活性较差.载体的氧化还原性质虽然不直接影响Au催化剂初活性,但直接影响催化剂稳定性.由于Au与SiO2或HZSM-5载体的相互作用较弱,导致反应过程中Au粒子聚集长大,使其失活较快;而Au/Al2O3催化剂表面则富含羟基物种,能够与Au形成配体或产生锚定作用,因此反应过程中金粒子没有明显长大.而表面中间物种的沉积并覆盖活性位是负载金催化剂缓慢失活的主要原因.  相似文献   

10.
甲醛是一种常见的室内空气污染物,人们针对其消除已经做了大量的研究工作.催化氧化法是脱除挥发性有机物的一种重要方法,能在较低温度下通过催化剂作用将甲醛完全氧化为无毒的CO_2和H_2O.所用催化剂主要为负载型贵金属催化剂和非贵金属催化剂,但只有担载贵金属Pt或Pd的催化剂可在室温下将甲醛完全氧化,而非贵金属一般则需要较高的温度.Au催化剂是近年来催化领域的一个研究热点,但是关于纳米Au催化剂室温消除甲醛的研究较少.本课题组前期研究发现,以可还原性氧化物(CeO_2,Fe O_x)为载体负载的Au催化剂具有优异的室温氧化甲醛活性;并且突破以可还原性载体负载金的传统思路,首次发现"惰性载体"γ-Al_2O_3,负载的金催化剂在室温、有水条件下具有优异的甲醛氧化活性.本文对比了还原性氧化物(CeO_2,Fe O_x)和非还原性氧化物(Al_2O_3,SiO_2和HSZM-5)载体负载金催化剂,研究了载体氧化还原性质对负载金催化剂在高空速(600000 ml/(g·s))条件下室温催化氧化甲醛的活性和稳定性影响.结果表明,在室温、高空速且相对湿度为50%的条件下,Au/Al_2O_3催化剂的初活性最高,且较为稳定.Au/SiO_2和Au/HZSM-5催化剂的初活性虽然较高,但很快失活.而还原性氧化物载体(CeO_2,FeO_x)负载的金催化剂初活性较低,但是稳定性较好.通过电镜对负载金催化剂表面Au粒子大小的表征,并将粒子尺寸与负载金催化剂室温氧化甲醛初活性相关联,它与催化氧化甲醛反应速率成线性关系.Au粒子尺寸较小的催化剂(Au/Al_2O_3和Au/SiO_2),在高空速条件下具有更高的氧化甲醛活性,而Au粒子尺寸较大的Au/Fe O_x催化剂活性较差.载体的氧化还原性质虽然不直接影响Au催化剂初活性,但直接影响催化剂稳定性.由于Au与SiO_2或HZSM-5载体的相互作用较弱,导致反应过程中Au粒子聚集长大,使其失活较快;而Au/Al_2O_3催化剂表面则富含羟基物种,能够与Au形成配体或产生锚定作用,因此反应过程中金粒子没有明显长大.而表面中间物种的沉积并覆盖活性位是负载金催化剂缓慢失活的主要原因.  相似文献   

11.
锶助剂对铂锡催化剂正丁烷脱氢催化性能的影响   总被引:3,自引:0,他引:3  
负载型PtSn/Al2O3催化剂已广泛地应用于工业生产中[1],人们正尝试着添加不同助剂以改变催化剂的反应性能。文献的工作主要集中在研究铂锡催化剂中添加助剂对载体表面酸性的调变作用。在烃类重整催化剂中,加入氟、氯等元素可增强载体的表面酸性[2],提高...  相似文献   

12.
A highly shape-selective and relatively long-lifetime HZSM-5-based catalyst (Zn-2P/HZSM-5) was prepared by chemical modification with both ZnSiF6·6H2O and H3PO4 solution. The phosphoric acid modification could effectively modulate the Brønsted acid strength of the HZSM-5 catalyst, which promotes the oligomerization, alkylation, cyclization, and hydrogen transfer reactions. The introduction of Zn-Lewis acid sites significantly improved the dehydroaromatization of higher olefins. All of these were very beneficial for the generation of BTX (i.e. benzene, toluene, and xylene) hydrocarbons in aromatization of methanol. The coke amount and the average rate of coke formation decreased over the Zn-2P/HZSM-5 catalysts, which may largely be ascribed to its lower strong acid sites and lower outer surface acidity. The catalytic performance of methanol aromatization showed that the Zn-2P/HZSM-5 catalyst exhibited the highest BTX selectivity of about 46.76% and the longest catalytic lifetime of about 498 h at T = 400 °C, P = 0.1 MPa, and weight hourly space velocity = 0.7 h−1.  相似文献   

13.
Te-promoted (1%) vanadium phosphate catalyst (VPDTe) was prepared via VOPO4·2H2O by calcining its precursor VOHPO4·0.5H2O in a flow of n-butane/air.VPDTe catalyst has resulted a higher existence of V5+ phase with V5+/V4+ ratio of 0.23.SEM micrographs show that Te addition altered the arrangement of the platelets from "rose-like" clusters to layer with irregular shape.Te addition has also markedly lowered the reduction activation energies of the vanadium phosphate catalyst as revealed by TPR profile.The amount of active oxygen species associated with V4+ phase of the Te promoted catalyst was significantly higher than those of the unpromoted catalyst.These observations suggest that high mobility and availability of reactive oxygen species contributed to the enhancement of n-butane conversion up to 80% at 673 K,while only 47% over unpromoted catalyst (2400 h-1,1.7% n-butane in air).  相似文献   

14.
The aromatization of n-butane under supercritical conditions on gallium-, zinc-, and platinum-modified high-silica zeolites with a modulus of 30–70 was first studied, and the experimental data were compared to the results of a study of this process in the gas phase. It was found that the operational efficiency of catalysts for n-butane conversion under supercritical conditions was much higher than that for the gas-phase reaction in terms of activity, productivity, and resistance to poisoning by condensation products. The aromatization of gaseous n-butane at 530°C and 1 atm was characterized by rapid catalyst deactivation. The selectivity for the benzene-toluene-xylene (BTX) fraction was higher than 50%. Under supercritical conditions at 430–560°C and 100–200 atm, the selectivity of formation of aromatic compounds decreased by a factor of 2, whereas the yield of C1-C3 cracking products increased by the above factor. On the other hand, it was found that an increase in the productivity of catalysts by a factor of 20–50 with the retention of almost 100% activity for several days of operation is an advantage of the process performed under supercritical conditions. The almost complete conversion of butane under supercritical conditions was found on promoted HZSM-5 zeolite samples. The thermogravimetric analysis of spent samples suggested a higher degree of catalyst carbonization under supercritical conditions, as compared with that in the reaction performed in the gas phase. However, the deposition of 20–30 wt % condensation products on the catalysts had no detectable effect on the high activity of the catalysts in the reaction performed under supercritical conditions.  相似文献   

15.
The catalytic activity of superacidic systems based on SO4/ZrO2 and modified by IV Period metals in isomerization ofn-butane was studied. At low temperatures of the reaction, the introduction of Fe3+, Sc3+, Co2+, or Zn2+ ions (1%) increases the yield of isobutane by 1.5 times due to the activation ofn-butane on the sites created by the promoting ions. The addition of Cr3+, V4+, or Mn2+ (1%) decreases the catalytic activity because of a decrease in the catalyst acidity, most likely, due to the reduction of surface sulfur species. The influence of the nature of the support and surface additives of SiO2, TiO2, and ZrO2 on the activity and selectivity of the catalytic system inn-butane isomerization was studied. Translated fromIzvestiya Akademii Nauk. Seriya Khimicheskaya, No. 7 pp. 1276–1280, July, 1999  相似文献   

16.
The addition of 1% Mn promoter to vanadium phosphate catalyst led to doubling of the specific surface area from 20.3 (unpromoted) to 39.4 m2 g−1. The XRD pattern of the Mn-promoted catalyst gave only the characteristics of the (VO)2P2O7 phase, indicating that the Mn was incorporated into the crystal lattice of the catalyst. The Mn-promoted catalyst was also twice as active in removing the total amount of oxygen. However, since the only oxygen species related to V4+ being removed and no oxygen species associated with V5+ was observed, the n-butane conversion was not much improved as compared to the unpromoted counterpart. A necessary amount and distribution of the V5+ phase in a well crystalline V4+ phase is essential in order to enhance the catalytic performance in the mild oxidation of n-butane to maleic anhydride.  相似文献   

17.
In this study, in order to develop catalysts for the selective isomerization of higher paraffin, the hydroisomerization reaction of n-dodecane was performed as a model reaction. Pt/ZSM-48, Pt/HZSM-5, Pt/HY, and Pt/SAPO-11 were examined for the selective hydroisomerization of n-dodecane. The catalysts were characterized via X-ray powder diffraction, N2 adsorption, and the temperature-programmed desorption of ammonia. Among the catalysts studied, the Pt/HZSM-48 catalyst exhibited the best isomerization selectivity in the hydroisomerization reaction of n-dodecane, which is attributed to the moderate acid sites and medium-sized pores present in the HZSM-48. The highest iso-dodecane yield was obtained at a reaction temperature of 280 °C in the Pt/HZSM-48 catalyst. The optimal selectivity of the n-dodecane hydroisomerization over the Pt/SAPO-11 catalyst was obtained at approximately 300 °C, which was slightly higher than that of the Pt/HZSM-48 catalyst.  相似文献   

18.
Summary Analysis of the kinetics of the hydrogenolysis of n-butane on a Ru/Al2O3catalyst permits recognition of the range of H2:n-butane ratio where carbon formation can be neglected. Variation of the apparent activation energy with H2pressure results from a variable contribution of its heat of adsorption to the true activation energy. Effects on product selectivities and on response of rate to H2pressure due to oxidation and low-temperature reduction are also traced to differences in heats of adsorption.</o:p>  相似文献   

19.
The catalytic activity of the thermal decomposition products of Zr(SO4)2 · 4H2O in the reactions of 1-butene isomerization to 2-butenes, isobutanol dehydration, and n-butane skeletal isomerization was studied. Their behaviors in typical acid reactions and in skeletal isomerization were found to be considerably different. In the first two reactions, which occur with the participation of proton sites, the activity of zirconium sulfates was an extremal function of hydrate calcination temperature. Zirconium sulfate calcined at 400–550°C was the most active catalyst. The reasons for such behavior are discussed. In the skeletal isomerization of n-butane, crystalline zirconium sulfate was practically inactive, and it became active only after degradation. The results suggest that the activation of n-butane molecules did not occur at proton sites.  相似文献   

20.
采用浸渍法制备了Ni/HZSM-5双功能催化剂,采用BET、XRD、NH3-TPD、H2-TPR、FTIR和TG等方法表征了催化剂比表面、孔结构、酸性、还原能力及骨架结构等信息,研究了其催化木糖醇水相加氢合成液体烷烃的性能及催化剂失活的原因。结果表明,在优化的金属中心/酸中心的协同作用下,木糖醇可通过水相加氢高选择性地合成C5-C6烷烃;过高的金属中心或酸中心均会导致C-C键断裂形成轻质烷烃,以2%Ni/HZSM-5催化剂上木糖醇水相加氢活性最高,木糖醇C转化率为94%液体烷烃总收率可达90%,这与其具有较大的比表面积、合适的孔径分布、较多的金属活性中心、适中的酸量和强酸量有关。催化剂6次重复使用后活性明显降低,其骨架部分脱铝和表面积碳是其失活的主要原因。  相似文献   

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