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1.
为减缓温室效应,将CO_(2)转换成高附加值的甲醇是减少CO_(2)排放的有效途径,而高效催化剂是CO_(2)加氢制甲醇反应规模化的关键.可调控合成的具有量子尺寸效应的纳米催化剂在该反应上具有独特的优势.因此我们深入探讨了反应机理,综述了纳米材料在CO_(2)加氢制甲醇中的研究进展,最后给出了高效催化剂可能的发展方向.  相似文献   

2.
CO2/H2和(CO/CO2)+H2低压合成甲醇催化过程的本质   总被引:8,自引:0,他引:8  
通过在Cu/ZnO/Al2O3催化剂上CO2+H2,CO+H2和(CO/CO2)+H2催化反应动力学研究对合成甲醇动力学和反应机理进行了细致分析,提出合成甲醇的反应机理,解释了在(CO/CO2)+H2合成甲醇过程中少量CO2的作用及合成甲醇的直接碳源。  相似文献   

3.
The induction behavior in CO2 hydrogenation was studied by varying the reaction temperature to investigate the adaptation of the Cu/ZnO/Al2O3 catalyst to the temperature change. The results indicated that a used catalyst had a tendency to keep the last running state in new reaction conditions for MeOH formation, and that this tendency was related to the difference in Cu/Cun+ ratio caused by CO2 and CO produced at different reaction temperatures. However, the reverse water-gas shift reaction (RWGS) induced at four temperatures was completely different from that of methanol synthesis. It implied that the two so-called competitive reactions in CO2+H2, RWGS and methanol synthesis, have different active centers.  相似文献   

4.
The induction behavior in CO2 hydrogenation was studied by varying the reaction temperature to investigate the adaptation of the Cu/ZnO/Al2O3 catalyst to the temperature change,The results indicated that a used catalyst had a tendency to keep the last running state in new reaction conditions for MeOH formation,and that this tendency was related to the difference in Cu/Cu^n ration caused by CO2 and CO produced at different reaction temperatures,However,the reverse water-gas shift reaction (BWGS) induced at four temperatures was completely different from that of methanol synthesis,It implied that the two so-called competitive reactions in CO2 H2,RWGS and methanol synthesis,have different, active centers.  相似文献   

5.
采用柠檬酸燃烧法制备了CuO-ZnO-ZrO2(CZZ)催化剂,并将其用于CO2加氢合成甲醇反应.按推进剂化学原理对燃烧反应进行了分析,并采用热重-差热分析(TG-DTA)技术记录了其燃烧行为.采用X射线衍射(XRD)、氮吸附、程序升温还原(TPR)及氧化亚氮(N2O)反应吸附技术对制得的催化剂进行了表征.结果表明:柠檬酸燃烧法的燃烧过程比较温和,燃料用量对催化剂物化和催化性能的影响不大,并结合燃烧反应的特点进行了解释.此外,还对三种燃料(柠檬酸、尿素和甘氨酸)的用量与CZZ性能之间的关系进行了比较,表明柠檬酸作燃料具有更好的工艺可控性.柠檬酸燃烧法是一种简单、快速且有效的制备CZZ催化剂的方法.  相似文献   

6.
CuZnOAl2O3催化剂用于合成甲醇的反应机理已经进行了大量的研究[1~3]。近年来,利用原位红外技术在研究合成甲醇的催化反应机理方面取得了不少研究成果[4~7]。但大多数实验是采用低铜含量催化剂[4,5]。本文采用高温加压式原位红外池,在513K和20MPa的条件下,...  相似文献   

7.
The induction behavior in CO2 hydrogenation was studied by varying the reaction temperatureto investigate the adaptation of the Cu/ZnO/Al2O3 catalyst to the temperature change. The resultsindicated that a used catalyst had a tendency to keep the last running state in new reaction conditionsfor MeOH formation, and that this tendency was related to the difference in Cu/Cun+ ratio caused byCO2 and CO produced at different reaction temperatures. However, the reverse water-gas shift reaction(RWGS) induced at four temperatures was completely different from that of methanol synthesis. It impliedthat the two so-called competitive reactions in CO2+H2, RWGS and methanol synthesis, have differentactive centers.  相似文献   

8.
CO对CO2加氢合成甲醇的影响   总被引:2,自引:0,他引:2  
甲醇是重要的有机化工原料,同时它也已被确认为尾气污染少、辛烷值高的汽、柴油接烧的洁净燃料和大功率燃料电池的燃料[1].随着世界石油贮量的枯竭,甲醇汽车将快速发展,所以CO2加氢合成甲醇具有广阔的应用前景和深远的理论意义.铜基催化剂上CO2加氢主要存在二个竞争反应[2  相似文献   

9.
制备了Cu-Zn-Al (4/50/5)催化剂(Cat)和Cu-Zn-Al-Li(40/50/5/5)催化剂(Cat-Li).并将其分别用于由CO/H_2和CO_2/H_2合成甲醇。诸如TPD、TPR、TPSR、脉冲、CD3I-捕获、同位素标记、EPR及原位DRIFT等技术和方法被用来表征这两种催化剂及研究反应机理,对处于去氢、含氢及含氧态催化剂进行了对比研究以期阐明表面氧和表面氢对CO_2和CO活化所起的作用。提出了一个由甲酸根和甲醛氢化及甲醇氧化结果为证的CO/CO_2氢化机理。由于通过Li 取代CuO晶格上的Cu2+形成的氢空位,在Cat中添加Li+改善了甲醇合成活性。CO_2能被一捕获的电子(F-中心)活化,生成的CO2-能容易地被氢化成甲酸根和亚甲基双草酰,后者分解生成H2CO和表面氧。CO能被表面氧活化,生成的CO2-将遵循CO_2氢化的途径。在CD3I-捕获的实验中,我们捕获了表面氧。在无表面氧时,CO可能直接氢化成甲酸基,即CO_2氢化中的一途径。由亚甲基双草酰产生的H2CO表面模型可能与由甲醛吸附或CO氢化生成的H2CO表面模型不同。  相似文献   

10.
研究了YBa2Cu3O6~7超导催化剂上CO2的加氢反应。应用TPD、TPR、SEM和原位FTIR等技术对催化剂进行表征发现,CO2极易吸附到YBa2Cu3O6~7催化剂的氧空位上。反应过的催化剂易被还原。反应的中间物种是醛基和甲酸根。根据FTIR结果提出甲醇是CO2和H2反应的直接产物,CO2+H2→CH3OH+H2O和CO2+H2→CO+H2O是体系中存在的平行反应  相似文献   

11.
The surface species of CO hydrogenation on CeO2-Co/SiO2 catalyst were investigated using the techniques of temperature programmed reaction and transient response method. The results indicated that the formation of H2O and CO2 was the competitive reaction for the surface oxygen species, CH4 was produced via the hydrogenation of carbon species step by step, and C2 products were formed by the polymerization of surface-active carbon species (-CH2-). Hydrogen assisted the dissociation of CO. The hydrogenation of surface carbon species was the rate-limiting step in the hydrogenation of CO over CeO2-Co/SiO2 catalyst. The investigation of total pressure, gas hourly space velocity (GHSV), and product distribution using nitrogen-rich synthesis gas as feedstock over a laboratory scale fixed-bed reactor indicated that total pressure and GHSV had a significant effect on the catalytic performance of CeO2-Co/SiO2 catalyst. The removal of heat and control of the reaction temperature were extremely critical steps, which required lower GHSV and appropriate CO conversion to avoid the deactivation of the catalyst. The feedstock of nitrogen-rich synthesis gas was favorable to increase the conversion of CO, but there was a shift of product distribution toward the light hydrocarbon. The nitrogen-rich synthesis gas was feasible for F-T synthesis for the utilization of remote natural gas.  相似文献   

12.
The effect of vanadium addition to Cu/γ-Al2O3 catalyst used in the hydrogenation of CO2 to produce methanol was studied. It was found that the catalytic performance of the Cu-based catalyst improved after V addition. The influence of reaction temperature, space velocity and the molar ratio of H2 to CO2 on the performance of 12%Cu-6%V/γ-Al2Oa catalyst were also studied. The results indicated that the best conditions for reaction were as follows: 240 ℃, 3600 h-1 and a molar ratio of H2 to CO2 the dispersion of the supported CuO species, which resulted in the enhanced catalytic performance of Cu-V/γ-Al2O3 binary catalyst.  相似文献   

13.
High selectivity to light alkenes can be achieved from CO and CO_2hydrogenation over K-Fe-MnO/Si-2 catalyst.The alkene selectivity isinsensitive to reaction temperature for CO hydrogenation,while apparentlyincreases for CO_2 hydrogenation with raising reaction temperature.An increasein alkene selectivity is observed for both CO and CO_2 hydrogenation with GHSVrising,While a decrease with the elevation of reaction pressure for both CO/H_2and CO_2/H_2 reaction.A two-step mechanism is suggested forCO_2 hydrogenation to form hydrocarbons,by which the variations incontributions of CO and HC as products of CO_2/H_2 reaction with change ofreaction temperature,GHSV and pressure are explained.Moreover,thecatalyst is favorable for selective production of light olefins,which can alsoconcern the slightly secondary reactions of light olefins to some extent.  相似文献   

14.
沉淀还原法制备高性能CO2加氢合成甲醇Cu/ZnO/Al2O3催化剂   总被引:1,自引:0,他引:1  
由铜基催化剂催化CO2+H2合成甲醇是有效利用CO2的潜在途径[1~5]. 但传统的催化剂对该反应的催化活性及选择性均很低[3~5], 因而寻求具有高活性及高选择性的新型催化剂已成为重要研究课题[4,6]. Cu/ZnO系列催化剂的制备方法和助剂对催化剂的性质及CO2加氢合成甲醇的反应性能有显著影响[6~10], 传统的气相还原活化铜基催化剂的过程常伴随强烈的热效应, 导致催化剂活化过程存在耗时长及还原条件难以控制等问题[11]. 本文采用沉淀-还原法, 用KBH4溶液对新鲜制备的碳酸盐共沉淀进行液相化学还原处理, 直接得到高活性及高选择性的还原态Cu/ZnO/Al2O3甲醇合成催化剂, 并可通过改变催化剂表面Cu+/Cu0活性物种的相对比例来改善催化剂的活性及选择性.  相似文献   

15.
研究了YBaCu3O6~7超导催化剂上CO2的加氢制醇反应。考察了温度、压力和空速等条件对催化剂反应性能的影响。反应的主要产物是甲醇、CO和少量甲醚。利用XPS、XRD和AFM等技术对催化剂的结构、铜的存在状态和反应活性位进行表征发现,在反应过程中,YBa2Cu3O6~7由orthombic相转变为tetragonal相。反应活性位可能是Cu(I)物种。反应后催化剂颗粒的分散程度明显提高  相似文献   

16.
Cu/ZrO2 catalysts have demonstrated effective in hydrogenation of CO2 to methanol, during which the Cu-ZrO2 interface plays a key role. Thus, maximizing the number of Cu-ZrO2 interface active sites is an effective strategy to develop ideal catalysts. This can be achieved by controlling the active metal size and employing porous supports. Metal-organic frameworks (MOFs) are valid candidates because of their rich, open-framework structures and tunable compositions. UiO-66 is a rigid metal-organic skeleton material with excellent hydrothermal and chemical stability that comprises Zr as the metal center and terephthalic acid (H2BDC) as the organic ligand. Herein, porous UiO-66 was chosen as the ZrO2 precursor, which can confine Cu nanoparticles within its pores/defects. As a result, we constructed a Cu-ZrO2 nanocomposite catalyst with high activity for CO2 hydrogenation to methanol. Many active interfaces could form when the catalysts were calcined at a moderate temperature, and the active interface was optimized by adjusting the calcination temperature and active metal size. Furthermore, the Cu-ZrO2 interface remained after CO2 hydrogenation to methanol, as confirmed by transmission electron microscopy (TEM), demonstrating the stability of the active interface. The catalyst structure and hydrogenation activity were influenced by the content of the active component and the calcination temperature; therefore, these parameters were explored to obtain an optimized catalyst. At 280 ℃ and 4.5 MPa, the optimized CZ-0.5-400 catalyst gave the highest methanol turnover frequency (TOF) of 13.4 h-1 with a methanol space-time yield (STY) of 587.8 g·kg-1·h-1 (calculated per kilogram of catalyst, the same below), a CO2 conversion of 12.6%, and a methanol selectivity of 62.4%. In situ diffuse-reflectance infrared Fourier transform spectroscopy (DRIFTS) of CO adsorption over the optimized catalyst revealed a predominant, unreducible Cu+ species that was also identified by X-ray photoelectron spectroscopy (XPS). The favorable activity observed was due to this abundant Cu+ species coming from the Cu+-ZrO2 interface that served as the methanol synthesis active center and acted as a bridge for transporting hydrogen from the active Cu species to ZrO2. In addition, the oxygen vacancies of ZrO2 promoted the adsorption and activation of CO2. These vacancies and Cu+ trapped in the ZrO2 lattice are the active sites for methanol synthesis from CO2 hydrogenation. The X-ray diffraction (XRD) patterns of the catalyst before and after reaction revealed the stability of its structure, which was further verified by time-on-stream (TOS) tests. Furthermore, in situ DRIFTS and temperature-programmed surface reaction-mass spectroscopy (TPSR-MS) revealed the reaction mechanism of CO2 hydrogenation to methanol, which followed an HCOO-intermediated pathway.  相似文献   

17.
A new K-Fe-MnO/Si-2 catalyst has been developed for CO2 hydrogenation, which exhibits a fascinating reaction activity and light olefin selectivity for CO2 hydrogenation. Over the catalyst, it is observed that olefin selectivity increases apparently with reaction temperature and/or GHSV, while decreases when reaction pressure is up. Furthermore, the catalyst exhibits a better stability for CO2 hydrogenation. However, coke deposited on catalyst surface is formed at the beginning of the reaction period and then reached a stable state during CO2 hydrogenation. Generally, the K-Fe-MnO/Si-2 catalyst can be regenerated for CO2 hydrogenation, the same selectivity of C2=-C4=alkenes is regained without any decrease in catalyst activity with time on stream.  相似文献   

18.
超细Cu-ZnO-ZrO2催化剂上甲醇合成的TPSR和TPD研究   总被引:1,自引:0,他引:1  
采用MS-TPSR和MS-TPD技术在不同粒度的超细Cu-ZnO-ZrO2催化上考查了CO2和CO加氢合成甲醇的反应过程和吸附活化特征。研究表明,CO2和CO都可以直接加氢合成甲醇。  相似文献   

19.
A new process of low-temperature methanol synthesis from CO/CO2/H2 based on dual-catalysis has been developed. Some alcohols, especially 2-alcohol, were found to have high catalytic promoting effect on the synthesis of methanol from CO hydrogenation. At 443 K and 5 MPa, the synthesis of methanol could process high effectively, resulting from the synergic catalysis of Cu/ZnO solid catalyst and 2-alcohol solvent catalyst. The primary results showed that when 2-butanol was used as reaction solvent, the one-pass average yield and the selectivity of methanol, in 40 h continuous reaction at temperature as low as 443 K and 5 MPa, were high up to 46.51% and 98.94% respectively. The catalytic activity was stable and the reaction temperature was 80 K or so lower than that in current industry synthesis process. This new process hopefully will become a practical method for methanol synthesis at low temperature.  相似文献   

20.
过度的碳排放已造成了严重的全球环境问题,电催化CO2还原是一种利用间歇性过剩电能将CO2转化为有价值的化学物质的有效策略.在多种CO2还原产物中,二碳(C2)产物(如乙烯、乙醇)因其比一碳产物(如甲酸、甲烷、甲醇)具有更高的能量密度而备受关注.Cu是唯一能用电化学方法将CO2转化为多碳产物的单金属催化剂.如何提高Cu基催化剂上CO2还原为C2产物的效率已引起了极大关注.电催化还原CO2生成C2产物有两个重要步骤:一是参与碳碳偶联反应的CO*中间体的量(*代表中间体吸附在基底表面),二是碳碳偶联步骤的能垒.对于Cu单金属催化剂,虽然其表面碳碳偶联步骤的能垒相对较低,但是Cu对CO2的吸附能力和CO2*加氢能力并不高,导致在Cu表面不能生成足量的CO*中间体参与碳碳偶联反应,因而对C2产物的选择性和活性并不理想.与Cu单金属催化剂相反,在Pd单金属催化剂表面,CO*中间体的形成具有超快的反应动力学,但是CO*易在Pd表面中毒且后续碳碳偶联步骤的能垒极高,使其表面不能生成C2产物.为了充分发挥Cu(碳碳偶联步骤能垒较低)和Pd(CO*形成具有超快反应动力学)的双重优势,本文构建了一种紧密的CuPd(100)界面,以调节中间反应能垒,从而提高C2产率.密度泛函理论(DFT)计算表明,CuPd(100)界面增强了CO2的吸附,且降低了CO2*加氢步骤的能垒,从而能够催化生成更多的CO*中间体参与碳碳偶联反应.且CuPd(100)界面上CO2还原为C2产物的电位决定步骤能垒为0.61 eV,低于Cu(100)表面的(0.72 eV).本文采用了一种简便的湿化学法制备了CuPd(100)界面催化剂.X射线衍射和X射线光电子能谱测试以及扩展X射线吸收精细结构光谱结果表明,合成的是相分离的CuPd双金属催化剂,而非CuPd合金催化剂.同时高分辨透射电镜可以观察到清晰的CuPd(100)界面.由此可见,本文成功合成了CuPd(100)界面催化剂.程序升温脱附实验结果表明,CuPd(100)界面对CO2和CO*的吸附比Cu强,结果与理论预测一致.气体传感实验结果表明,CuPd(100)界面CO2*加氢能力比Cu强.为评估CuPd(100)界面催化剂的催化活性,进行了CO2电化学还原实验.结果表明,在0.1 mol/L的KHCO3电解液中,CuPd(100)界面催化剂在–1.4 VRHE下,C2产物的法拉第效率为50.3% ±1.2%,是同电位下Cu催化剂的(23.6% ±1.5%)的2.1倍,C2产物的选择性是Cu催化剂的2.4倍,且具有更高的电流密度和更大的电化学活性面积.本文通过调控中间反应能垒以合理设计铜基CO2还原电催化剂提供了参考.  相似文献   

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