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1.
采用两步浸渍法制备钾改性的Mo/SBA-15催化剂.采用N2吸附,X射线衍射(XRD),透射电镜(TEM),紫外-可见(UV-Vis)吸收光谱,拉曼(Raman)光谱,NH3程序升温脱附(NH3-TPD),CO2程序升温脱附(CO2-TPD),H2程序升温还原(H2-TPR)等手段表征催化剂的物理化学性质.研究结果表明,在Mo0.75/SBA-15中添加K之后,有新物种钾钼酸盐生成,并且当K/Mo的摩尔比不同时,钼物种的存在状态也不同.添加钾之后,催化剂的活性和总醛(甲醛、乙醛、丙烯醛)的选择性均有所提高,并且受钾的添加量影响.在575°C时,在K0.25-Mo0.75/SBA-15催化剂上醛的收率可高达8.5%(摩尔分数).  相似文献   

2.
研究了钠、钾助剂对FeMn 合成低碳烯烃催化剂结构及性能的影响. 低温N2吸附、X射线光电子能谱(XPS)、X射线衍射(XRD)、H2程序升温还原(H2-TPR)、CO/CO2程序升温脱附(CO/CO2-TPD)、Mössbauer 谱和CO+H2反应的研究结果表明,增加Mn助剂含量促进了活性相的分散和低碳烯烃的生成,而过多锰助剂在催化剂表面的富集则降低了费托合成反应的CO转化率;钾助剂和钠助剂的加入均抑制了催化剂的还原并且促进了CO2和CO的吸附. 比较还原后(H2/CO摩尔比为20)和反应后(H2/CO摩尔比为3.5)催化剂的体相结构可以发现,在FeMn、FeMnNa和FeMnK催化剂中,由于钾助剂的碱性和CO吸附能力较强,因此体相中FeCx的含量相对较高;而活性测试结果表明,FeMnNa催化剂拥有最好的CO转化率(96.2%)和低碳烯烃选择性(30.5%,摩尔分数).  相似文献   

3.
采用溶胶-凝胶法制备了一系列不同Al2O3含量的SiO2-Al2O3复合氧化物,以该系列复合氧化物为载体,采用等体积浸渍法制备了Ni负载量15%(重量百分比)的催化剂,用于催化乙酰丙酸加氢制γ-戊内酯.采用N2物理吸附、X射线衍射(XRD)、H2程序升温还原(H2-TPR)、H2程序升温脱附(H2-TPD)、NH3程序升温脱附(NH3-TPD)和吡啶吸附红外(Py-IR)等手段对催化剂进行了表征.结果表明,不同载体催化剂的活性组分分散度及表面酸性质存在明显差异,显著影响了催化剂吸附、活化H2与C=O键的能力,进而影响了催化剂的乙酰丙酸加氢活性.其中,Ni/SiO2-Al2O3催化剂上的L酸中心能够促进C=O键的吸附、活化,与金属Ni上的H2吸附活性位协同作用,大大提高了乙酰丙酸加氢活性.因此,具有最多L酸中心和丰富H2吸附活性位的Ni/SiO2-8Al2O3催化剂表现出最高的乙酰丙酸加氢活性,在180℃、4 MPa氢气压力下,乙酰丙酸转化率达到90.5%,目标产物γ-戊内酯选择性为100%.  相似文献   

4.
以ZrO(NO32·2H2O为前驱体对多壁碳纳米管(MWCNTs)进行了改性并负载MnOx制备了MnOx/ZrO2/MWCNTs 催化剂. 考察了Zr 对催化剂低温选择性催化还原(SCR)反应活性的影响,并通过多种分析手段对催化剂的结构进行了表征. 结果表明Zr 的添加对催化剂的低温SCR活性具有显著的促进作用,当Zr 负载量为30%时,催化剂活性最佳. X射线衍射(XRD)、拉曼(Raman)光谱、透射电镜(TEM)、N2吸附-脱附的表征结果分析表明,适量的Zr 改性促进了MnOx在载体表面的分散,增强金属氧化物与MWCNTs 之间的作用,也能增加催化剂的比表面积、孔容和孔径. X 射线光电子能谱(XPS)、H2程序升温还原(H2-TPR)和NH3程序升温脱附(NH3-TPD)的分析结果则显示,Zr 能提高催化剂表面化学吸附氧浓度,促进Mn3+转化为Mn4+,从而使催化剂表面的活性位点增多,氧化还原能力增强,同时还提高了催化剂表面酸性位点的数量和强度,促进了NH3的吸附,是MnOx/ZrO2/MWCNTs 催化剂低温SCR活性提高的主要原因.  相似文献   

5.
固定铜铁的总质量不变, 采用共浸渍法制备铜铁双金属催化剂. 为了更好地了解催化剂的性质, 分别用N2吸附-脱附、H2-程序升温还原(H2-TPR)、NH3-程序升温脱附(NH3-TPD)、X射线衍射(XRD)和X射线光电子能谱(XPS)方法对制备的催化剂进行表征. 研究发现在100000 h-1空速下, 铜铁双金属催化剂呈现出好的活性和氮气选择性. 在低温区, 随着铜含量的增加, 活性和氮气的选择性增加, 然而在高温区氮气的选择性直接和铁的含量相关. 其中催化剂Fe0.25Cu0.75/ZSM-5, 在350℃氨的转化率达到最高, 在300℃氮气的选择性上升到97%. Fe0.75Cu0.25/ZSM-5 在500 ℃有很高的氮气选择性甚至可以达到98%. 并且所有的催化剂均产生很少的N2O副产物. 表征结果显示催化剂的酸量和铜物种的含量可以影响催化剂的活性, 并且高的还原能力和铁含量有助于高温氮气选择性的提高.  相似文献   

6.
采用两步浸渍法和载体上的原位反应制备了一系列Cs部分取代的Ni-CsxH3-xPW12O40/SiO2催化剂,并用N2吸附比表面积测定(BET)、电感耦合等离子体发射光谱(ICP)、X射线衍射(XRD)、拉曼光谱(Raman)、原位X射线衍射(in situ XRD)、NH3程序升温脱附(NH3-TPD)、H2程序升温还原(H2-TPR)、H2程序升温脱附(H2-TPD)、吡啶吸附傅里叶变换红外(FTIR)光谱等分析测试技术对催化剂进行了表征. 以正癸烷为模型化合物,对催化剂的加氢裂化性能进行了评价. 结果表明,8%Ni-50%Cs1.5H1.5PW/SiO2催化剂具有最高的C5+收率,明显优于8%Ni-50%H3PW/SiO2催化剂和工业催化剂. 随着Cs 在CsxH3-xPW中比例的增加,正癸烷的转化率逐渐降低,而C5+选择性则逐渐提高. 当催化剂具有合适的孔径时,选择性的提高是由于催化剂酸性的减弱,而转化率的降低则是由于催化剂加氢能力的减弱.  相似文献   

7.
以介孔分子筛SBA-15为载体, 磷酸氢二铵为磷源, 硝酸镍为镍源, 硼酸为硼源, 采用共浸渍法制备了B-Ni2P/SBA-15催化剂前驱体, 然后采用程序升温氢气还原法, 制备了nP/nNi=0.8, B含量为0.35%-2.10%(w)的一系列B-Ni2P/SBA-15催化剂. 用X射线衍射(XRD)、N2吸附脱附、透射电子显微镜(TEM)和氨气程序升温脱附(NH3-TPD)等表征技术对催化剂的结构进行了研究, 以1%(w)二苯并噻吩(DBT)/十氢萘溶液为模型化合物, 在微型固定床反应器上对催化剂的加氢脱硫(HDS)性能进行了评价. 结果表明, B-Ni2P/SBA-15催化剂仍具有介孔结构, Ni2P为主要的活性物相. 适量B助剂的加入可促使Ni2P晶粒减小, 催化剂比表面积增加. 此外, 随着B含量的增加, B-Ni2P/SBA-15催化剂的总酸量也增加. 当反应压力为3.0 MPa, 反应温度由300 ℃升高至360 ℃时, B含量对Ni2P/SBA-15催化剂活性有明显的影响, B含量为1.40%(w)的B-Ni2P/SBA-15催化剂加氢脱硫活性最高. B-Ni2P/SBA-15催化剂上二苯并噻吩的加氢脱硫的反应机理以直接脱硫为主.  相似文献   

8.
利用溶胶-凝胶法以及共缩聚反应合成得到了新型的Ti掺杂SiO2纳米管(TiSNTs)。然后,利用共沉淀的方法在该催化剂上负载了不同Mn含量的Mn/TiSNTs复合催化剂。当Si与Ti的物质的量之比超过5时,可以看到形成了很清楚的蠕虫状形貌。NH3-TPD(氨气程序升温脱附)测试结果显示掺杂到SiO2骨架中的Ti极大增强了催化剂的酸性位点而且提高了NH3在催化剂表面的吸附量和氨选择性催化还原(NH3-SCR)的活性。同时,H2-TPR(氢气程序升温还原)测试结果显示Ti掺杂增强了催化剂的氧化还原能力和储氧容量。NH3还原NOx的SCR结果说明当Si与Ti的物质的量之比为10的时候,Mn/Ti(10)SNT催化剂显示了优异的催化活性,在温度范围为135~325℃时NO转化率超过90%。  相似文献   

9.
利用溶胶-凝胶法以及共缩聚反应合成得到了新型的Ti掺杂SiO2纳米管(TiSNTs)。然后,利用共沉淀的方法在该催化剂上负载了不同Mn含量的Mn/TiSNTs复合催化剂。当Si与Ti的物质的量之比超过5时,可以看到形成了很清楚的蠕虫状形貌。NH3-TPD(氨气程序升温脱附)测试结果显示掺杂到SiO2骨架中的Ti极大增强了催化剂的酸性位点而且提高了NH3在催化剂表面的吸附量和氨选择性催化还原(NH3-SCR)的活性。同时,H2-TPR(氢气程序升温还原)测试结果显示Ti掺杂增强了催化剂的氧化还原能力和储氧容量。NH3还原NOx的SCR结果说明当Si与Ti的物质的量之比为10的时候,Mn/Ti(10) SNT催化剂显示了优异的催化活性,在温度范围为135~325℃时NO转化率超过90%。  相似文献   

10.
采用浸渍法通过改变焙烧气氛制备了系列NiO/SBA-15 (wNiO=20%)催化剂, 并考察了催化剂的丙烷氧化脱氢(ODHP)反应性能. 实验结果表明, 与在静止和流动空气中焙烧的催化剂相比, 在1%NO/He (VNO/VHe=1:99)气氛中焙烧的NiO/SBA-15-NO具有优异的低温丙烷氧化脱氢制丙烯性能, 在350 ℃时, 丙烷的转化率和丙烯收率分别约达29%和13%. 反应温度升至450 ℃时, 丙烯的选择性仍保持在45%左右. X射线粉末衍射(XRD)和透射电镜(TEM)测试结果表明, 1%NO/He气氛可有效抑制焙烧过程中NiO纳米颗粒的团聚, 使NiO物种高分散于SBA-15 的孔道中. H2-程序升温还原(H2-TPR)和O2-程序升温脱附(O2-TPD)测试结果表明, 随着NiO在SBA-15上分散度的提高, 催化剂的抗还原性增强, ODHP活性氧物种O-的含量增加, 进而使1%NO/He气氛中焙烧的NiO/SBA-15-NO在较宽的温度范围内(350-450 ℃)均具有良好的丙烯选择性, 并显著提高了催化剂的低温活性.  相似文献   

11.
Mixed iron and molybdenum oxide catalysts supported on nanostructured silica, SBA-15, were synthesized with various Mo/Fe atomic ratios ranging from 0.07/1.0 to 0.57/1.0. Structural characterization of as-prepared MoxOy_FexOy/SBA-15 samples was performed by nitrogen physisorption, X-ray diffraction, and DR-UV-Vis spectroscopy. Adding molybdenum resulted in a pronounced dispersion effect on supported iron oxidic species. Increasing atomic ratio up to 0.21Mo/1.0Fe was accompanied by decreasing species sizes. Strong interactions between iron and molybdenum during the synthesis resulted in the formation of Fe−O−Mo structure units, possibly Fe2(MoO4)3-like species. Reducibility of MoxOy_FexOy/SBA-15 catalysts was investigated by temperature-programmed reduction experiments with hydrogen as reducing agent. The lower reducibility obtained when adding molybdenum was ascribed to both dispersion and electronic effect of molybdenum. Catalytic performance of MoxOy_FexOy/SBA-15 samples was studied in selective gas-phase oxidation of propene with O2 as oxidant. Adding molybdenum resulted in an increased acrolein selectivity and a decreased selectivity towards total oxidation products.  相似文献   

12.
The influence of molybdenum content on the catalytic performance in the transesterification of dimethyl oxalate (DMO) with phenol to methyl phenyl oxalate (MPO) and diphenyl oxalate (DPO) was investigated. The results indicated that the MoO3/Al2O3 catalyst with 14 wt% Mo content gave maximal DPO yield with 6.1% and 75.1% DMO conversion. The component, structure and phase of MoO3/Al2O3 catalysts were characterized by means of X-ray diffraction (XRD), BET specific surface area, temperature-programmed desorption of ammonia (NH3-TPD), and FTIR analysis of adsorbed pyridine. This revised version was published online in June 2006 with corrections to the Cover Date.  相似文献   

13.
采用等体积共浸渍法,制备了一批不同钾含量的KxMo P/Al2O3(x表示K与Mo摩尔比,0≤x≤3)催化剂,考察其对高硫合成气制甲硫醇性能的影响,并采用X射线衍射分析(XRD)、程序升温还原法(TPR)和激光拉曼光谱(LRS)等技术手段对催化剂进行了表征。结果表明,氧化铝负载的磷钼氧化物前驱体在850℃经H2气还原制备出了Mo P/Al2O3催化剂,少量添加钾催化剂有较高的甲烷选择性,大量添加钾助剂促进了催化剂表面活泼钼硫物种的生成,使得磷化钼基催化剂有较好的甲硫醇选择性,而过量添加钾又会阻碍了甲硫醇的生成。当n(K)/n(Mo)比在2~2.5之间时,磷化钼基催化剂对该反应有较好的催化活性。  相似文献   

14.
Au–Pd catalysts supported on SBA-16, SBA-16-CeO2, and CeO2 had been studied for partial oxidation of methanol to produce H2. The physicochemical characteristics of the catalysts prepared by deposition–precipitation using urea hydrolysis were examined by inductively coupled plasma atomic emission spectroscopy (ICP-AES), Brunauer-Emmett-Teller (BET), X-ray powder diffraction (XRD), Temperature-programmed reduction (TPR), and H2 temperature-programmed desorption (H2-TPD) analyses. The results show that AuxPdy alloys are observed in Au–Pd/SBA-16 and Au–Pd/SBA-16-CeO2 catalysts. The catalytic results demonstrate that both Au–Pd/SBA-16 and Au–Pd/SBA-16-CeO2 catalysts exhibit higher activity and lower CO selectivity than the Au–Pd/CeO2 catalyst. This could be ascribed to the formation of AuxPdy alloys. The comparison of the Au–Pd/SBA-16 and Au–Pd/SBA-16-CeO2 catalysts reveals that the Au–Pd/SBA-16-CeO2 shows the lower CO selectivity, probably due to the presence of CeO2.  相似文献   

15.
A series of vanadium–chromium oxide (VCrO) catalysts supported on silica was prepared by wetness impregnation method with different Cr/V molar ratios from 0.2 to 1.0. These catalysts were characterized by XRD, TG, temperature-programmed desorption of ammonia (NH3-TPD), X-ray photoelectron spectra (XPS), and Raman spectroscopy, and their catalytic activity was evaluated in the ammoxidation of 3-picoline (3-PIC) to nicotinonitrile (NN). The results of XRD, TG, Raman, and XPS confirmed that the active components on the silica surface were mainly amorphous V2O5 and CrVO4. The results of NH3-TPD showed that acidity of the catalysts decreased with the increase of Cr/V ratio. Catalytic results revealed that acidity of the catalysts was closely related to the catalytic performance. Low acidity gave low conversion of 3-PIC and high NN selectivity. Furthermore, the conversion of 3-PIC increased with rise in reaction temperature, and the selectivity of NN was slightly influenced by the 3-PIC conversion. Therefore, among the catalysts (Cr/V ratio was 0.2, 0.4, 0.6) tested, Cr/V-0.6 catalyst retained the lowest acidity and exhibited the highest selectivity and yield of NN in the ammoxidation of 3-PIC.  相似文献   

16.
The preparation of mesocellular foam carbon catalysts with different ratios of 1,3,5-trimethyl benzene (TMB)/P123 is represented for investigation in catalytic activity via ethanol dehydrogenation to acetaldehyde. The TMB was used as a swelling agent and P123 acted as template-structuring. The physicochemical properties of synthesized catalysts were determined using Brunauer-Emmett-Teller (BET) surface area analysis, transmission electron microscopy (TEM), scanning electron microscopy (SEM)–energy dispersive X-ray spectroscopy (EDX), X-ray diffraction (XRD), Fourier transform infrared (FT-IR), thermogravimetric analysis (TGA), ammonia temperature-programmed desorption (NH3-TPD), and carbon dioxide temperature-programmed desorption (CO2-TPD). The evidence suggested that various ratios of TMB/P123 can differently control the mesostructure including the pore size, specific surface area, and pore volume. Particularly, MCF-C 3.5 catalyst (TMB/P123 of 3.5) enhanced the catalytic via ethanol dehydrogenation. Interestingly, effectively controllable pore structure of catalysts is beneficial for the desorption of selective product such as acetaldehyde leading to remarkably increased yield of acetaldehyde. Furthermore, the MCF-C 3.5 evidently exhibited outstanding stability at temperature of 400 °C for 12 h. Thus, it can be reasonably selected the ratio of TMB/P123 as 3.5, which is dominantly facilitated either high diffusion of reactant or high stability without losing of the traditional structure compared with other ratios of TMB/P123.  相似文献   

17.
Highly dispersed silicotungstic acid-derived WO3 composited with ZrO2 supported on SBA-15(WZ/SBA-15) as an ordered mesoporous solid acid catalyst was prepared via a facile incipient wetness impregnation(IWI) method that active ingredients,ZrO2 and WO3,were impregnated into the channels of SBA-15 simultaneously with a subsequent calcination process.The relationship between catalyst nature and performance was explored by high resolution transmission elec...  相似文献   

18.
采用共沉淀法制备了不同铈铬比例的CeO2-CrOx复合氧化物(Ce/Cr 摩尔比分别为9/1、4/1、2/1、1/1、1/2、1/4、1/8)以及单纯的CeO2和Cr2O3, 并研究了各催化剂对1,2-二氯乙烷(DCE)的催化氧化性能. 结果表明,相较于单纯的CeO2, 不同铈铬比例的复合氧化物催化剂对DCE的催化氧化活性有明显提高, 其中Ce/Cr 摩尔比为2/1的CeO2-CrOx复合氧化物上DCE的氧化活性最好, 且只有极微量的含氯等副产物产生; 随着Ce/Cr 摩尔比减小, 对HCl的选择性有下降的趋势. 通过X射线衍射(XRD)、N2吸附/脱附(BET)、紫外拉曼(UV-Raman)光谱、H2程序升温还原(H2-TPR)、NH3程序升温脱附(NH3-TPD)等实验技术, 研究了铈铬比例对铈铬复合氧化物的物理化学性质的影响. 结果表明, 适当比例Ce-Cr的复合, 形成了结构较稳定的Ce-Cr-O固溶体, 提高了催化剂活性氧物种的流动性, 催化剂表面酸量及强弱酸比例, 从而有利于DCE的吸附活化, 进一步脱氯降解以及深度氧化.  相似文献   

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