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1.
A practical two-stage reactive grinding-assisted pathway waste-free and cost-effective for the synthesis of NiMoO4 has been successfully developed. It was demonstrated that proper design in synthetic strategy for grinding plays a crucial role in determining the ultimate polymorph of NiMoO4. Specifically, direct grinding (DG) of MoO3 and NiO rendered α-NiMoO4 after annealing, whereas sequential grinding (SG) of the two independently pre-ground oxides followed by annealing generated β-NiMoO4 solid solution. Characterizations in terms of Raman and X-ray diffraction suggest the creation of β-NiMoO4 precursor in the latter alternative is the key aspect for the formation of β-NiMoO4. The DG-derived α-NiMoO4 tested by oxidative dehydrogenation of propane exhibited superior activity in contrast to its analog synthesized via conventional coprecipitation. It is suggested that the favorable chemical composition facilely obtained via grinding in contrast to that by coprecipitation was essential for achieving a more selective production of propylene.  相似文献   

2.
Nanostructured cobalt molybdate catalysts supported on mesoporous silica SBA-15 with different loadings were prepared by citric acid coordination-impregnation method and characterized by XRD, TEM, and BET techniques. The characterization results showed that high loading of well-dispersed crystalline CoMoO4 may be achieved using citric acid coordination-impregnation method and the mesoporous structure of the support remained intact. The catalytic activity of these catalysts in the oxidative dehydrogenation of propane was investigated. The catalysts of nanostructured cobalt molybdate supported on mesoporous silica SBA-15 showed better catalytic performance than the corresponding bulk composite oxide and nanostructured CoMoO4 supported on SBA-15 with loading of 13% (mass fraction, w) displayed propene yield of 16.8% at 823 K.  相似文献   

3.
NiMoO4 obtained by calcination of precursors has been shown to be a very effective catalyst for oxidative dehydrogenation of propane into propene. Preparation conditions and thermal decomposition of two precursors have been studied by TG-DTA, HTXRD, FFT-IR, and thermo-desorption coupled to mass spectroscopy in order to determine their composition and to define the best treatment to favour the oxidative dehydrogenation process. The selectivity and activity for propane transformation into propene are very different depending on the nature of the precursor and of the active phases obtained after thermal activation. The more selective high-temperature β phase of NiMoO4 has been obtained at a lower temperature (500°C) than previously reported (700°C).  相似文献   

4.
The acid-base properties of several NiMoO4 catalysts supported on two silicas and prepared by different methods have been studied by temperature-programmed desorption of NH3. The catalytic behavior in the oxidative dehydrogenation of isobutane for two NiMoO4 catalysts with different acid-base properties are compared.  相似文献   

5.
介孔氧化铝负载Ni-Co氧化物催化剂上丙烷氧化脱氢制丙烯   总被引:1,自引:0,他引:1  
以非离子型三嵌段共聚物作为模板剂, 异丙醇铝为氧化铝的前驱物, 采用一锅法合成了一系列介孔氧化铝负载镍氧化物、钴氧化物以及镍-钴双金属氧化物催化剂, 并以介孔氧化铝为载体, 采用浸渍法制备了负载Ni-Co 氧化物催化剂. 采用N2吸附-脱附、高分辨透射电镜(HRTEM)、X射线粉末衍射(XRD)、H2程序升温还原(H2-TPR)以及激光拉曼光谱(LRS)等技术对催化剂的结构与性质进行表征, 并考察了催化剂的丙烷氧化脱氢反应性能. 结果表明: 一锅法制备的各催化剂均有大的比表面积和规整的孔道结构, 且负载的金属氧化物高度分散; 而浸渍法制备的催化剂, 其载体的介孔结构被破坏并有Co3O4晶相生成. 在考察的催化剂中, 一锅法合成的介孔氧化铝负载Ni-Co 氧化物催化剂表现出最佳的丙烷氧化脱氢性能. 在450 °C、C3H8:O2:N2的摩尔比为1:1:4和空速(GHSV)为10000 mL·g-1·h-1条件下, 该催化剂上丙烯产率为10.3%, 远高于浸渍法制备的催化剂上所获得的丙烯产率(2.4%). 关联催化剂表征和反应结果, 讨论了催化剂结构与性能之间的关系.  相似文献   

6.
The CN‐15‐x series materials with different doses of SBA‐15 template and the CN‐y‐2.0 series materials with different hard templates were prepared by the hard template method with hexamethylenetetramine as the carbon and nitrogen source. The obtained mesoporous carbon materials were characterized by X‐ray diffraction (XRD), N2 adsorption–desorption, transmission electron microscopy (TEM), Raman spectroscopy, and X‐ray photoelectron spectroscopy (XPS). The catalytic performance of propane oxidative dehydrogenation was determined. The characterization results indicate that the catalytic activity of CN‐15‐2.0 with a bipartite hexagonal ordered structure was higher than those of the other materials. The conversion of propane was 22.98%, and the selectivity toward propylene was 41.70%.  相似文献   

7.
SBA-15负载纳米CoMoO4催化剂催化丙烷氧化脱氢制丙烯   总被引:1,自引:0,他引:1  
采用柠檬酸配位-浸渍法制备不同CoMoO4含量的系列CoMoO4/SBA-15催化剂, 通过X射线衍射、透射电镜和低温N2吸附法对样品进行了表征. 结果表明, 柠檬酸配位-浸渍法可在介孔分子筛孔道中形成高含量、均匀分散且有确定晶相的CoMoO4, 同时能够很好地保持载体的介孔结构. 与非负载的CoMoO4相比, 由柠檬酸配位-浸渍法制备的CoMoO4/SBA-15催化剂在丙烷氧化脱氢反应中具有更好的催化活性, 当CoMoO4的含量为13%(w)、反应温度为823 K时, 丙烯产率达到16.8%.  相似文献   

8.
Temperature-programmed desorption and IR spectroscopic studies of the physicochemical properties of cobalt, nickel, and manganese molybdates are reported. These properties are correlated with the catalytic properties of the molybdates in the oxidative dehydrogenation of isobutane with atmospheric oxygen. It is demonstrated by an analysis of the IR spectra of the molybdates that the isobutene yield grows as the proportion of tetrahedrally coordinated molybdenum in the catalyst structure increases in isobutane dehydrogenation. NiMoO4 has the highest surface concentration of strong acid sites, and it binds adsorbed isobutene more strongly than the other catalysts  相似文献   

9.
钒基催化剂的脱氢性能与表面氧钒物种的形态密切相关。为了进一步增强传统原位合成的V-MCM-41催化剂上钒物种的分散性,本研究通过在制备过程中添加有机磷前驱物的方法对其进行改性。采用XRD、N2吸附-脱附、TPR、TPD、XPS、拉曼光谱及O2脉冲等方法对催化剂的结构、钒物种形态及分散度进行了系统的表征。表征结果表明,P改性后V-MCM-41催化剂的比表面积随着P含量的增加而缓慢下降,但整体仍能保持有序的六方介孔结构;P改性后表面钒物种的还原性和分散性均得到改善,聚合形态的钒物种比例明显下降。丙烷脱氢反应结果表明P改性后催化剂的丙烷脱氢性能和稳定性均有提高。在Si/P投料物质的量比为30时制备的催化剂能够获得最大表面钒氧位点和最佳丙烷脱氢性能。  相似文献   

10.
Highly dispersed vanadia species on SBA-15 mesoporous silica have been found to exhibit a highly efficient catalytic performance for the oxidative dehydrogenation (ODH) of propane to light olefins (propene + ethylene).  相似文献   

11.
The reaction of C2H6with lattice oxygen, O2- (in the absence of gaseous oxygen), or “adsorbedℍ oxygen (in the presence of gaseous oxygen) over NiMoO4 catalysts has been performed and compared to C3H8 activation. The results obtained indicate that adsorbed oxygen exhibits a higher reactivity to C2H6, while lattice oxygen is more reactive relative to C3H8. Kinetic studies of these two reactions in presence of molecular oxygen have indeed shown that the ethane oxidative dehydrogenation (ODH) is dependent on the oxygen partial pressure, whilst on the contrary propane ODH is not. In order to confirm the presence of “adsorbed” oxygen for ethane activation, ODH tests have been performed with N2O. On increasing temperature, the O- adsorbed species enhances the mild oxidation of ethane. The activation energy of ethane consumption EC2H6, relative to propane (EC3H8 = 133 kJ/mol) is 145 kJ/mol. A possible mechanism is proposed for the oxidative dehydrogenation of ethane. This revised version was published online in August 2006 with corrections to the Cover Date.  相似文献   

12.
The oxidative dehydrogenation of propane on a supported vanadium catalyst was studied (the support was a complex oxide system consisting of a ceria–zirconia solid solution deposited on γ-Al2O3 (CeZrO/γ-Al2O3)). A comparative analysis of the properties of the support and the catalyst prepared on its basis was performed. The support and catalyst were characterized by the BET method, scanning electron microscopy, X-ray diffraction analysis, and Raman spectroscopy. The catalytic properties of the catalyst and support were studied in propane oxidation at 450 and 500°C with pulse feeding of the reagent. The effect of propane on the support was found to improve the oxidative properties of the latter. This behavior of the support is related to the preparation procedure, which leads to the formation on its surface of the crystalline phase of the ceria–zirconia solid solution and amorphous ZrO2 and Al2O3 phases and/or their solid solution. Similar processes occur with the catalyst support during the oxidative dehydrogenation, giving rise to additional active centers (CeVO4).  相似文献   

13.
The physicochemical properties of V2O5/Al2O3 and MgO–V2O5/Al2O3 supported catalysts (Mg : V = 1 : 1, 2 : 1, and 3 : 2) obtained by consecutive impregnation of the support with solutions of vanadium and magnesium precursors are studied using a complex of mutually complementary methods (XRD, Raman spectroscopy, UV–Vis spectrometry, and TPR-H2). The effect of the formation of surface magnesium vanadates of various composition and structure on the catalytic properties of the supported vanadium oxide catalysts in the oxidative dehydrogenation of propane is studied. The introduction of magnesium in the samples and an increase in its content, accompanied by a change in the structure of the surface vanadium oxide phases from polymeric VO6/VO5 species to surface metavanadate species, magnesium metavanadate, and further to magnesium divanadate, significantly affects their catalytic properties in the reaction of the oxidative dehydrogenation of propane to propylene.  相似文献   

14.
A method was developed for introducing gallium into Mg-Al hydrotalcites—precursors of oxide catalysts for oxidative dehydrogenation of alkanes. Samples of oxide catalysts were synthesized that contained gallium oxide and also oxides of magnesium, aluminum, chromium, vanadium, molybdenum, and niobium in various combinations. The catalytic properties of the produced catalysts were studied in the oxidative dehydrogenation of ethane, propane, isobutane, and hexane. It was established that the addition of gallium to catalysts increases the ethylene and propylene yields in the oxidative dehydrogenation of ethane and propane. New hydroxo salts with a layered structure of the hydrotalcite type were synthesized: ternary magnesium gallium aluminum hydroxonitrate of variable composition [Al1 ? n Ga n Mg m (OH)3 + 2m ? 1][NO3 · nH2O] and quaternary magnesium gallium chromium aluminum hydroxonitrate of the composition [AlGaCrMg1.8(OH)11.6][NO3 · nH2O]; these salts were found to be isostructural.  相似文献   

15.
The synthesis and crystal structure of NiMoO4·nH2O were investigated. The hydrate crystallized in the triclinic system with space group P−1, Z=4 with unit cell parameters of a=6.7791(2) Å, b=6.8900(2) Å, c=9.2486(2) Å, α=76.681(2)°, β=83.960(2)°, γ=74.218(2)°. Its ideal chemical composition was NiMoO4·3/4H2O rather than NiMoO4·1H2O. Under hydrothermal conditions the hydrate turned directly into α-NiMoO4 above 483 K, giving nanorods thinner than the crystallites of the mother hydrate. On the other hand, it turned into Anderson type of polyoxomolybdate via a solid-solution process in a molybdate solution at room temperature.  相似文献   

16.
Borocarbonitride (BCN) materials are newly developed oxidative dehydrogenation catalysts that can efficiently convert alkanes to alkenes. However, BCN materials tend to form bulky B2O3 due to over-oxidation at the high reaction temperature, resulting in significant deactivation. Here, we report a series of super stable BCN nanosheets for the oxidative dehydrogenation of propane (ODHP) reaction. The catalytic performance of the BCN nanosheets can be easily regulated by changing the guanine dosage. The control experiment and structural characterization indicate that the introduction of a suitable amount of carbon could prevent the formation of excessive B2O3 from BCN materials and maintain the 2D skeleton at a high temperature of 520 °C. The best-performing catalyst BCN exhibits 81.9 % selectivity towards olefins with a stable propane conversion of 35.8 %, and the propene productivity reaches 16.2 mmol h−1 g−1, which is much better than hexagonal BN (h-BN) catalysts. Density functional theory calculation results show that the presence of dispersed rather than aggregated carbon atoms can significantly affect the electronic microenvironment of h-BN, thereby boosting the catalytic activity of BCN.  相似文献   

17.
It has been evidenced that the dissolution of niobium in silica mesoporous matrix significantly increases the catalytic effectiveness in the oxidative dehydrogenation of alkanes as compared with unsupported Nb2O5. This revised version was published online in June 2006 with corrections to the Cover Date.  相似文献   

18.
Recent progress on the bismuth molybdate catalysts for oxidative dehydrogenation of n-butene to 1,3-butadiene was reported in this review. A number of bismuth molybdate catalysts, including pure bismuth molybdates (α-Bi2Mo3O12, β-Bi2Mo2O9, and γ-Bi2MoO6) and multicomponent bismuth molybdates, were prepared by a co-precipitation method for use in the production of 1,3-butadiene from C4 raffinate-3 through oxidative dehydrogenation of n-butene. It was observed that multicomponent bismuth molybdate catalyst was more efficient than pure bismuth molybdate catalyst in the oxidative dehydrogenation of n-butene. Various experimental measurements such as temperature-programmed reoxidation, X-ray photoelectron spectroscopy, and O2-temperature-programmed desorption analyses were carried out to elucidate the different catalytic activity of bismuth molybdate catalysts. It was revealed that a bismuth molybdate catalyst with a higher oxygen mobility showed a better catalytic performance in terms of conversion of n-butene and yield for 1,3-butadiene. We have successfully demonstrated from experimental findings that oxygen mobility of bismuth molybdate catalyst played a key role in determining the catalytic performance in the oxidative dehydrogenation of n-butene to 1,3-butadiene.  相似文献   

19.
The oxidative dehydrogenation (ODH) of propane was investigated on Ni-V-O catalysts in a wide range of vanadium contents (5-40%). The addition of a small amount of vanadium significantly increased the catalytic activity of NiO for oxidative dehydrogenation of propane to propene. The formation of propene has a good correlation with the coexistence of NiO and Ni3V2O8. This result strongly suggests that a synergetic effect exists between them in NiXV1-XOY (X = 0.95 to 0.6). The best results were obtained with a high Ni/V ratio (e.g. X = 0.95 to 0.85). The active sites and selective oxygen species are discussed. The influence of the catalyst preparation technique and the redox properties of the catalyst were also examined.  相似文献   

20.
丙烯是一种重要的化工原料, 其下游产品丰富, 用途广泛, 主要用于生产聚丙烯、丙烯腈、丙烯酸和丁醇等化工产品.丙烯的需求正在不断增长, 而传统的丙烯生产方法如蒸汽裂解和石油催化裂化, 存在反应温度高、积碳严重且丙烯收率较低等问题. 因此研制丙烷脱氢制取丙烯的高效催化剂尤为重要. 研究发现, 以 CO2作为温和氧化剂进行逆水气变换反应可有效促进丙烷脱氢. 催化剂主要由活性组分与载体构成, 本文选择可用于活化丙烷的钒作为主要活性组分. 钒氧化物在载体上的高度分散是提高丙烷脱氢反应活性的关键. MCM-41 拥有较大的比表面积和高度有序的介孔结构, 可更有效地分散活性位点. 本文采用一步法合成了不同钒含量的 nV-MCM-41 催化剂 (1.9-10.6 wt%), 并研究了其在以下条件下催化丙烷氧化脱氢制丙烯反应性能: 600 °C, 催化剂质量 0.2 g, 进料气体组成 C3H8/CO2/Ar (摩尔比) = 1/4/4, 进料气体总流量 15 mL/min. 其中 6.8V-MCM-41 催化剂具有最高的活性, 其初始丙烷转化率达 58%, 丙烯选择性达 92%, 远高于相似反应条件下早期研究的 nV-SBA-15 催化剂. 并在四次反应-再生循环中始终保持其原来的高反应活性. 本文借助于 N2吸附-脱附、拉曼光谱 (Raman)、X 射线光电子能谱 (XPS)和热重 (TG) 等手段探究了不同钒含量的 nV-MCM-41 催化剂在丙烷脱氢反应中催化性能差异的原因.氮气吸附-脱附结果表明, 所有催化剂都存在典型的高度有序的介孔结构, 并没有因为钒组分的掺杂而破坏. nV-MCM-41催化剂拥有较大比表面积,并随钒掺杂量的增加而减小. 其中,10.8V-MCM-41催化剂的比表面积急剧下降,可能是由于产生了结晶的 V2O5阻塞了孔道. Raman 结果表明, 当钒负载量超过 6.8 wt% 时, 出现了 V2O5的结晶峰. 另外根据单分散的四面体钒氧化物的特征峰面积发现, 6.8V-MCM-41 催化剂中钒物种分散度最高, 与其具有最高催化活性结果一致. XPS 结果也进一步证明 6.8V-MCM-41 钒物种的分散度最高. 在连续反应过程中 6.8V-MCM-41 催化剂失活较快,可归结于活性钒位点的还原与催化剂表面的积碳. 通过氧化再生, 可恢复催化剂活性, 并且在 4 次再生循环中始终保持其良好稳定的活性.  相似文献   

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