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1.
Development and evaluation of novel catalysts capable of activating CO2 especially in CO2 hydrogenation have been investigated. Several catalysts have been prepared, and characterized by CO2 TPD. Their performance has been evaluated at 300 °C and 10 bar. All catalysts were active in CO2 hydrogenation reaction with conversions of approximately 15–30% at 24 h time on stream. Potassium was found to enhance chain growth and to decrease the formation of methane. Ru promoter did not provide any benefit in activity or selectivity. Zr-promoted catalyst materials exhibited enhanced CO2 adsorption and improved hydrocarbon yields.  相似文献   

2.
ZrO2-doped CuZnO catalyst prepared by successive-precipitation method was investigated by ICP-AES, BET, TEM, XRD, EXAFS, H2-TPR and CO/CO2 hydrogenation. The active phase of copper in CuZnO catalyst prepared by co-precipitation method was well-crystallized. The presence of ZrO2 led to a high copper dispersion, which was distinctive from CuZnO. Though the activity for carbon monoxide hydrogenation was little lower than that of CuZnO catalyst, ZrO2-doped CuZnO catalyst showed much higher activity and selectivity towards methanol synthesis from carbon dioxide hydrogenation. Moreover, ZrO2-doped CuZnO catalyst showed high performance for methanol synthesis from CO2-rich syngas.  相似文献   

3.
二氧化碳(CO2)加氢制甲醇对于解决CO2排放和能源紧缺问题具有重要意义,催化剂的研究是这项技术的关键。铜基催化剂因高效廉价而被广泛研究,但目前的生产效率离实现工业化仍有距离。本文针对铜基催化剂,首先探讨了活性中心的存在形式,然后从活性组分负载量、载体、助剂、制备方法及条件、预处理条件这5个方面,分别分析其对催化剂的活性、选择性以及稳定性等的影响,以期为CO2高值转化为甲醇的铜基催化剂的制备和筛选提供参考。按照广泛接受的双位点机理可知,CO2转化率与铜表面积密切相关,甲醇选择性与强碱位点含量密切相关。因此,各方面因素通过影响催化剂比表面积、铜表面积、铜分散度、碱性位点、铜与载体的协同作用等物理化学参数,进而影响CO2转化率与甲醇选择性。  相似文献   

4.
Mechanism and kinetics of catalytic process for a new low-temperature methanol synthesis on Cu/ZnO catalysts from syngas (CO/CO2/H2) using catalytically active alcohol promoters were investigated by in situ diffuse reflectance infrared Fourier transform spectroscopy (DRIFTS). Two intermediate species, adsorbed formate species and alkyl formate species, were formed in this synthesis process. The adsorbed formate species easily reacted with ethanol or 2-propanol at 443 K and atmospheric pressure, and the reaction rate with 2-propanol was faster than that with ethanol. Alkyl formate was readily reduced to form methanol at 443 K and 1.0 MPa, and the hydrogenation rate of 2-propyl formate was found to be quicker than that of ethyl formate. As a promoter, 2-propanol exhibited a higher activity than ethanol in the reaction of the low-temperature methanol synthesis.  相似文献   

5.
CO2加氢直接制取低碳烯烃是实现其资源化利用的重要途径。通过热分解法制备了5种不同K含量(1%、3%、5%、7%、9%)的Fe-K催化剂用于CO2加氢反应,结果表明Fe95-K5(95% Fe-5% K,质量分数)催化剂具有最优的活性及C2~C4烯烃选择性;随后对Fe95-K5催化剂进行了10% H2/Ar、10% CO/Ar及5% CO/5% H2/Ar 3种不同气氛活化处理以及CO2加氢反应。结果发现,10% CO/Ar活化的催化剂具有最高的C2~C4烯烃选择性(38.1%)及链增长能力(α=0.644)。此外,还通过X射线衍射、Raman、程序升温等表征技术揭示了催化剂在不同活化气氛下的结构演变历程。研究发现,10% CO/Ar与5% CO/5% H2/Ar活化的催化剂会生成γ1型碳化铁结构,而10% H2/Ar活化的催化剂则会在反应过程中生成γ2型碳化铁结构,两种碳化铁结构对CO2解离均有促进作用。  相似文献   

6.
在工业二氧化碳加氢制甲醇过程中,硫化氢气体的引入将对该过程中使用的催化剂活性及稳定性带来负面的影响。基于此,采用微反应合成法成功制备了InZrOx和ZnZrOx锆基催化剂,并研究了在二氧化碳加氢反应中,硫化氢气体对锆基催化剂的结构性质及其催化性能的影响规律。结果表明,在T=573 K、p=3.0 MPa和GHSV=18 000 mL/(gcat·h)条件下,仅通入二氧化碳/氢气反应气时,InZrOx和ZnZrOx催化剂的二氧化碳转化率和甲醇选择性分别为7.2%、9.3%和93%、92%。在二氧化碳/氢气原料气中通入体积分数为5×10-3硫化氢气体时,InZrOx和ZnZrOx催化剂的二氧化碳转化率和甲醇选择性都降为0,这主要是因为硫化氢气体占据了氧空位,导致锆基双金属氧化物催化剂硫中毒失活。当停止通硫化氢气体时,InZrOx和ZnZrOx催化剂的二氧化碳转化率和甲醇选择...  相似文献   

7.
The catalytic properties of CeO2 catalysts in direct synthesis of dimethyl carbonate (DMC) from CH3OH and CO2 were investigated. The formation rate of DMC over the catalysts calcined at 873 K and above was almost proportional to the surface area of catalysts. However, CeO2 calcined at 673 K showed lower activity than expected from the surface area. From the results of catalyst characterization, CeO2 calcined at 673 K contained considerable amount of amorphous phase. In contrast, the ratio of amorphous phase decreased on the catalysts calcined at 873 K and above. This suggests that stable crystallite surface is active for the reaction.

In the CH3OH + C2H5OH + CO2 reaction at low temperature, ethyl methyl carbonate (EMC) was formed, and selectivity of EMC formation was comparable to that of DMC. The formation route is discussed by the comparison with transesterification reaction.  相似文献   


8.
我国作为煤炭大国,燃烧化石燃料产生大量CO2。通过化学作用将CO2转化为能源燃料、基础化学品或高分子材料,有利于实现碳氧资源综合利用。从CO2直接利用和间接利用的角度出发,分别综述了CO2资源化利用研究进展。直接利用方面,重点阐述了CO2直接加氢合成甲醇和乙醇;同时CO2可作为羰化剂合成有机碳酸酯和高分子材料,包括碳酸二乙酯、聚碳酸酯和CO2基可降解聚合物。在间接利用方面,重点综述了CO2经碳酸乙烯酯的酯交换反应合成碳酸二甲酯,以及碳酸乙烯酯加氢制备甲醇联产乙二醇的研究进展。CO2加氢直接合成甲醇催化剂主要包括铜基催化剂、贵金属催化剂,由于贵金属的成本高,廉价的Cu基催化剂研究较为广泛。CO2加氢直接合成乙醇研究较广泛的催化剂为贵金属(Rh、Pd、Ru)基催化剂体系,还需进一步研究廉价、高活性和高稳定性的催化剂。CO2与乙醇直接合成碳酸二乙酯(DEC)研究较多的催化剂为铈基多相催化剂,但由于生成物中水分的影响,限制了DEC的收率。环氧化物和CO2耦合反应生成DEC过程中不产生水,可以有效克服热力学的限制,因此高能化合物与CO2的耦合路线是高效制备DEC的有效途径。CO2与环氧化物共聚制备聚碳酸酯材料多采用稀土三元催化剂体系,环氧化物的转化率和聚碳酸酯选择性较高,目前已经实现工业应用。CO2通过碳酸乙烯酯与甲醇酯交换合成DMC,多使用碱性较强的催化剂和含碱性基团的离子交换树脂。CO2经碳酸乙烯酯加氢制备甲醇和乙二醇的反应中,铜基催化剂展现出优异的催化性能。CO2化学转化利用是CO2碳氧资源综合利用的重要途径,将有效支撑我国未来碳中和目标实现。  相似文献   

9.
刘畅  刘忠文 《化工进展》2022,41(3):1115-1120
CO2加氢制二甲醚(DME)是有潜力实现CO2资源化利用的重要途径之一。与光、电催化相比,CO2的非均相催化转化具有转化效率高等优点,但目前CO2加氢一步制备DME催化剂的反应活性较低、稳定性较差。本文在简要介绍CO2加氢一步制DME的铜基双功能催化剂、复合氧化物和氮化镓催化剂的基础上,重点总结了活性中心结构和反应机理的研究进展。对于铜基双功能催化剂,CO2加氢经甲醇中间体合成DME,其中还原态铜(Cu0、Cu+及Cu δ+,0<δ<2)是其催化活性中心,且还原态铜的分散度及稳定性、固体酸的性质和酸性位分布以及两类活性中心的耦合效应是决定DME收率和催化剂稳定性的关键因素。与此相反,DME是氮化镓催化CO2加氢的初级产物。这与铜基双功能催化剂有着本质区别,属新催化剂体系。在此基础上,文章对CO2加氢制DME的可能研究方向进行了展望,认为“二甲醚经济”更具发展潜力。  相似文献   

10.
The catalytic activity of Pt on alumina catalysts, with and without MnOx incorporated to the catalyst formulation, for CO oxidation in H2-free as well as in H2-rich stream (PROX) has been studied in the temperature range of 25–250 °C. The effect of catalyst preparation (by successive impregnation or by co-impregnation of Mn and Pt) and Mn content in the catalyst performance has been studied. A low Mn content (2 wt.%) has been found not to improve the catalyst activity compared to the base catalyst. However, catalysts prepared by successive impregnation with 8 and 15 wt.% Mn have shown a lower operation temperature for maximum CO conversion than the base catalyst with an enhanced catalyst activity at low temperatures with respect to Pt/Al2O3. A maximum CO conversion of 89.8%, with selectivity of 44.9% and CO yield of 40.3% could be reached over a catalyst with 15 wt.% Mn operating at 139 °C and λ = 2. The effect of the presence of 5 vol.% CO2 and 5 vol.% H2O in the feedstream on catalysts performance has also been studied and discussed. The presence of CO2 in the feedstream enhances the catalytic performance of all the studied catalysts at high temperature, whereas the presence of steam inhibits catalysts with higher MnOx content.  相似文献   

11.
The direct synthesis of olefins by CO2 hydrogenation with iron-based catalysts is one of the best ways to achieve CO2 emission reduction and CO2 conversion and utilization. At present, the CO2 hydrogenation activity and structural strength of the iron-based catalysts are still relatively low during CO2 hydrogenation process, which has become an important challenge for the industrialization of CO2 hydrogenation to olefins. In this work, a series of the supported iron-based catalyst was prepared by the impregnation method to study the influence of the properties of support materials on the structure of iron-based catalysts and the reactivities of the direct synthesis of olefins from CO2 hydrogenation. This work found that the support induced the iron species formed during the process of CO2 hydrogenation, simultaneously affected the order degree of carbon species on the surface of iron-based catalyst, and tuned the capability of CO2 adsorption and the activities of CO2 activation. The results shown that the Fe-based catalyst supported on ZrO2 exhibited the best catalytic performance for CO2 hydrogenation to olefins at 320℃ and 2.0 MPa. The CO2 conversion (>30%) and the selectivity of olefins in C2—C7 hydrocarbon products were as high as over 85%, the ratio of olefins to paraffins was 8.2, and the CO selectivity was 17.1%.  相似文献   

12.
铁基催化剂CO2加氢直接合成烯烃是实现CO2减排及CO2转化与利用的最佳途径之一。目前铁基催化剂的CO2加氢活性及反应过程中铁基催化剂结构强度仍然较低,成为CO2加氢制烯烃产业化生产的重要挑战。通过浸渍法制备一系列负载型铁基催化剂,研究载体材料性质对铁基催化剂结构及CO2加氢直接合成烯烃的影响特性。研究发现,载体可诱导铁基催化剂在CO2加氢反应过程中形成的铁物种,同时影响铁基催化剂表面碳物种的有序度,调变对CO2吸附及活化能力;研究结果表明ZrO2负载的Fe催化剂展现出最佳的CO2加氢合成烯烃催化性能,在温度320℃和反应压力2.0 MPa时,CO2转化率>30%,C2~C7烃类产物中烯烃选择性高达85%以上,烯烷比为8.2,且CO选择性较低为17.1%。  相似文献   

13.
CO_2的大量排放给人类生存环境带来威胁的同时也造成资源的严重浪费,实现资源→CO_2→资源的可持续循环是解决该问题的理想途径,因此,CO_2加氢制甲醇倍受关注。国外完成中试试验,国内仍处于小试阶段。受CO_2富集及H_2制取成本的限制,CO_2加氢制甲醇技术须利用先进技术与可再生资源获得廉价的原料气。Cu-Zn系催化剂为有工业化前景的CO_2加氢制甲醇催化剂,但存在活性与选择性差的问题,未来活性组分高度分散和具有高比表面积的纳米催化材料的研制是比较可行的研究思路。  相似文献   

14.
采用湿化学共沉淀法制备了MnZnOx固溶结构催化剂,考察了焙烧温度对催化剂物化性质和催化性能的影响。采用X射线衍射(XRD)、X射线光电子能谱(XPS)、N2吸附-脱附、CO2-TPD(程序升温脱附)及H2-TPR(程序升温还原)等手段对不同焙烧温度下催化剂物化性质进行了分析表征。结果表明,焙烧温度对MnZnOx晶相组成、孔结构性质、二氧化碳吸附特性及表面氧空位浓度等物化性质影响较大。500 ℃焙烧条件下制得的MnZnOx催化剂形成了具有丰富的表面氧空位、较大的二氧化碳吸附量和介孔孔容且溶质组分分散均匀的固溶结构。在反应压力为3.0 MPa、反应空速(GHSV)为14 400 mL/(g·h)、V(氢气)∶V(二氧化碳)∶V(氮气)=72∶24∶4条件下,MnZnOx催化剂于380 ℃表现出优异的催化性能,甲醇选择性为86.1%、二氧化碳转化率为16.0%、甲醇时空产率(STY)达0.68 gMeOH /(h·gcat)。  相似文献   

15.
采用共沉淀法制备了一系列CuO-ZnO-Al2O3-ZrO2(CZAZ)催化剂,用于二氧化碳加氢合成甲醇。通过加入少量的助剂二氧化硅得到了一系列CZAZ/SiO2改性催化剂。采用XRD、BET、H2-TPR、NH3-TPD以及CO2-TPD等技术进行表征,研究了助剂二氧化硅含量对催化剂的物理化学性质以及组织结构的影响。结果表明,助剂二氧化硅的含量对催化剂的组织结构具有较大的影响。同时评价了该组催化剂参与二氧化碳加氢合成甲醇反应的催化性能。测试结果表明,采用助剂二氧化硅质量分数为4%的改性催化剂,表现出较为优良的催化活性。助剂二氧化硅促进了活性组分氧化铜的分散,并且经过二氧化硅改性的CZAZ催化剂具有更大的比表面积,这些因素都对该催化剂在二氧化碳加氢合成甲醇方面的良好表现起到重要作用。  相似文献   

16.
樊钰佳  吴素芳 《化工进展》2016,35(Z1):159-166
二氧化碳加氢合成甲醇反应是二氧化碳利用的重要途径,其中催化剂的研究是技术的关键。本文针对反应采用的铜基催化剂,从铜基催化剂的制备方法、活性组分铜的分散度、铜粒径以及铜与载体间界面作用等方面,分别对其影响催化剂的活性、甲醇的选择性以及稳定性作用进行研究综述。通过分析认为:催化剂的制备方法影响催化剂的铜分散度、铜粒径及铜与载体间的作用,从而影响催化剂催化性能。其中在共沉淀法的基础上进行改进是目前催化剂制备方法的研究趋势,且增加铜分散度、减小铜粒径及增大铜与载体间作用对二氧化碳加氢合成甲醇反应铜基催化剂的催化性能有不同程度的影响。该综述为进一步研制高活性、高甲醇选择性和优异稳定性的新型催化剂提供参考。  相似文献   

17.
二氧化碳(CO2)催化加氢制备甲醇等重要化工原料是一项具有前景的碳循环利用技术。目前,该技术的核心挑战是开发出高活性、高选择性和高稳定性的CO2加氢催化剂。相比于传统的铜基催化剂,铟基催化剂有较高的甲醇选择性和高温稳定性,近年来受到学术界的关注。然而,目前人们对In基催化剂CO2加氢反应机理和催化本质等科学问题的认知尚未形成统一理论。本综述总结了催化剂制备、反应机理研究与热力学分析、催化剂结构表征方法等进展。针对目前存在的单程转化率不高、催化剂稳定性不足等问题,提出未来研究方向包括引入新的助剂或活性组分,设计特殊结构的催化剂以及耦合分子筛等。  相似文献   

18.
Ceria catalysts were found active and selective to the oxidehydrogenation of ethane (ODE) with CO2 and the actual contribution for C2H4 formation from heterogeneous catalysis was 75–55% in the range 953–993 K. The presence of calcium ions in solid solution in the ceria crystalline network increased significatively the selectivity to ethene and the efficiency of CO2 as oxidant in the heterogeneous reaction.  相似文献   

19.
Cu/ZrO2 catalysts for methanol synthesis from CO2/H2 were respectively prepared by deposition coprecipitation (DP) and solid state reaction (SR) methods. There is an intimate interaction between copper and zirconia, which strongly affects the reduction property and catalytic performance of the catalysts. The stronger the interaction, the lower the reduction temperature and the better the performance of the catalysts. Surface area, pore structure and crystal structure of the catalysts are mainly controlled by preparation methods and alkalinity of synthesis system. The conversion of CO2 and selectivity of methanol are higher for DP catalysts than for SP catalysts.  相似文献   

20.
The combined CO2 reforming and partial oxidation (POX) of n-heptane was studied on various noble metal zirconia catalysts between 700 and 900 °C. The activity order of the metals was Rh > Pd > Ir > Pt. Selectivity to syngas increased with the activity of the catalysts but the H2 to CO molar ratio decreased. The activity and selectivity of the 0.25 wt% Rh/ZrO2 catalyst were close to the performance of a commercial 15 wt% NiO/Al2O3 catalyst. The conversions and product compositions were compared to the calculated thermodynamic equilibria.  相似文献   

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