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1.
王海清 《大学化学》1995,10(2):46-47
用前线轨道理论、催化理论对乙烯催化加氢反应机理进行了分析,可以得出:在此反应中,有下列反应机理存在:在一些教材和文献中,对乙烯催化加氢反应机理一般用下列方法解释[1](如图1):但据催化理论,C2H4、CO、H2三种气体在金属Ni上的化学吸附强度顺序是C2H4>CO>H2[2]。这是由于C2H4与金属Ni形成较强的σ-π反馈键[3](如图2):从CO在J105Ni催化下的加氢反应,可知CO的吸附主要为不可逆吸附(此反应机理为被Ni吸附的CO受到H-H基团的进攻,造成C-O键的断裂,生成CH4+H2O)[4]。由于Ni对C2H4的吸附较CO强,从而推断出Ni对C2H4,的吸附亦是不可逆的。若按上述机理进行反应,则必然导致局部不可逆中毒,使反应难以进行,或进行得相当缓慢。但这样的推论与实验结果不符,相反,在一定条件下,此反应进行得相当迅速。为此,我们断定,必然存在一个能使C2H4解吸的反应步骤,这个反应如图3。因此,我们认为,在乙烯催化加氢反应中,有两种反应机理同时存在,它们是:1.H2被Ni吸附,分裂为氢原子,附着在Ni晶体表面,因自由原子不受对称效应的制约[5],故可与C2H4发生反应。2.C2H4被Ni吸  相似文献   

2.
余长春  路勇 《分子催化》1997,11(4):261-267
报道了用脉冲反应研究Ni/Al2O3催化剂上CH4/CO2重整反应的结果。脉冲反应显示,在还原的Ni/Al2O3催化剂上,CH4在673K就开始发生分解,并有C2H6、C2H4生成,1023K下,CH4几乎完全分解,单纯的CO2则很难在还原的催化剂上发生反应,在973K以上的高温下才会有少量C胜成CO.CHCO2的脉冲反应表明,当CH4在较低温度下开始分解时,CO2也会发生分解,并生成CO。脉冲反  相似文献   

3.
Ni-Cu和MgO-SiO_2间的相互作用及其对催化性能的影响   总被引:2,自引:0,他引:2  
本文用TPR,IR,TPD和TPSR等技术研究了以表面改性法制备的MgO-SiO2(MSO)表面复合物担载的Ni-CU合金间的相互作用及其对CO加氢反应催化性能的影响.结果表明,NiO-CuO与MSO间的相互作用导致部分MO与MSO形成表面物种从而使金属组分氧化物还原温度明显升高;还原后的Ni-Cu/MSO表面上存在着两类活性中心,即合金相中的Ni与载体相中的Mg2+(或Mg2+-O);在两类活性中心的协同作用下,CO吸附除有孪生、线式和桥式吸附态物种外,还有一种新的卧式吸附态(Ni...C=O→Mg2+).这种吸附态的活化程度较高,易在表面上发生裂解形成Ni-C和Mg2+-O,其中Ni-C是加氢反应的碳源;H2在催化剂表面上发生解离吸附形成Ni-H和Mg2+-OH,前者比较活泼,是加氢反应的氢原.CO加氢生成烃类的反应在Ni中心上按"表面碳"机理进行,其生成CZH4的选择性高于80%;H2O的生成反应按2(Mg2+-OH)-→Mg2++(Mg2+-O)+H2O方式进行.  相似文献   

4.
用表面反应改性法制备了TiO2-SiO2(TSO)表面复合物载体.采用TPR,IR,TPDMS和TPSR-MS等技术研究了NI-Cu/TSO间的相互作用及其对CO加氢反应的催化性能.结果表明,NiO-CuO与TSO间的相互作用导致CuO的还原温度降低和NiO的还原温度升高,并有少量表面物种生成;还原后的Ni-Cu/TSO催化剂表面上存在着两类活性中心,即合金相中的Ni及载体相中的Tin+(或Tin+-O);CO在催化剂表面存在孪生、线式、桥式和卧式等4种吸附态;H2在催化剂表面上发生解离吸附形成Ni-H和Tin+-H,前者比较活泼,是加氢反应的主要H源;卧式吸附态极易在催化剂表面裂解形成Ni-C和Tin+-O,前者是加氢反应的C源,使CO加氢生成烃类的反应在Ni中心上按"表面碳"机理进行,其生成乙烯的选择性大于60%.H2O的生成反应在Tin+中心上按Tin+-O与Tin+-H或Ni-H反应的途径进行.  相似文献   

5.
用化学法制备了非晶态合金催化剂Ni-B和Ni-Co-B。ICP方法测得其组成分别为Ni_(93)B_7和Ni_(72)Co_(20)B_8。经XRD、DSC及TEM鉴定所制合金为非晶态。通过考察氧化处理温度对CO加氢反应的活性及反应稳定性的影响后发现,NiB的活性及稳定性均高于NiCoB。在高真空程序升温脱附及反应装置上研究了H_2和CO的反应,认为其反应机理可能为:吸附的CO解离为表面反应的控制步骤,解离态的C和原子氧分别与CO、H_2等反应生成产物CO_2、CH_4和H_2O。  相似文献   

6.
在2.9%(wt)Ni/Al2O3催化剂上用insituFTIR研究了CH4部分氧化制合成气的反应机理。结果表明,催化剂表面的活性碳物种与化学吸附的O原子反应生成CO;CH4/O2(2:l)混合气在催化剂表面吸附的IR谱图表明只有H2O和CO2存在,说明CH4和CO2的重整反应没有发生。因此,我们认为CO和H2是一级产物。  相似文献   

7.
担载于Al_2O_3和ZrO_2上的三种金属羰基络合物在He气中进行程序升温分解(TPDE)时,其羰基发生表面歧化反应生成CO_2能力的次序为NaRuCo_3(CO)_(12)>>Ru_3(CO)_(12)>>C_3H_7CCo_3(CO)_9。吸附于担载Ru_3和Co_3上的CO在He气中进行程序升温脱附(TPD)时发生表面歧化反应生成CO_2。在H_2气中,吸附于担载Ru_3上的CO力H_2生成CH_4,吸附于担载Co_3上的CO却生成Co_2,在担载RuCo_3上的CO几乎完全力H_2生成CH_4。以ZrO_2为载体的Ru_3、Co_3和RuCo_3催化剂上的CO吸附和反应能力均大于以Al_2O_3为载体者。吸附于以ZrO_2为载体的RuCo_3催化剂上的CO在TPD和IR谱上并不显示CO物种的存在,分析了C_(ads)和O_(ads)物种存在的原因。根据实验结果还讨论了金属、载体对催化性能的影响和表面反应机理。  相似文献   

8.
Ni/Al2O3催化剂上甲烷部分氧化制合成气反应机理   总被引:12,自引:2,他引:12  
用变应答/质谱在线检测技术研究了Ni/Al2O3催化剂上甲烷部分氧化制合成气的反应要理,研究结果指出,在常压973K条件下,Ni/Al2O3催化剂上甲烷部分氧化制合成气按直接氧化机理进行,H2和C烛甲烷部分氧化的一次产物,其主要反应可表示如下:1.CH4+xNi-NixC+2H2,2.O2+2Ni-2NiO,3.NixC+NiO-CO+(x+1)Ni。  相似文献   

9.
采用浸渍-还原法制备的Ni/MgO/Al2O3在CH4与CO2重整制合成气反应中显示出良好的催化性能和一定的抗积炭能力;在1023K下流动反应气氛中连续运转100h,未见活性下降,CH4及C弦均为90%左右,CO收率高于90%,实验还发现,CH4转化率随着原料气中CO2浓度的增加而升高,当V(CO2)/V(CH4)=2时CH4转化率可达100%,通过BET比表面积测定及XRD,TEM等分析手段,比  相似文献   

10.
CH2(X 3B1)自由基与O2的反应   总被引:2,自引:0,他引:2  
用时间分辨富里叶红外发射谱仪(TR-FTIRS)研究了CH2(X^3B1)自由基与O2反应的通道及产物的振动动态布居,基电子态自由基CH2(X^3B1)由351nm紫外激光光解CH2CO生成,观测到振动发态反应产物CO(v≤10),CO2(v3≤7)OH(H2O)和H2CO的红外发射,证实存在生成H2CO的通道,由光谱拟合得到不同时刻CO(v)和CO2(v3)的相对振动布居,发现v=4能级的布居数  相似文献   

11.
本文运用红外光谱研究了CO和H_2O在Ni基催化剂上的吸附和反应规律。证实了H_2O在催化剂上是解离吸附, 以OH的形式吸附在催化剂上, 在OH之间可能有氢键形成。CO有两种吸附态: 线式和桥式。预吸附H_2O使CO线式吸附态几乎消失, 桥式吸附峰红移了约30 cm~(-1)。在不同温度时, 对比了CO或表面碳与H_2O的反应, 发现表面碳更容易同水反应生成甲烷。  相似文献   

12.
用等体积浸渍法制备了MoO3 SiO2 (MoSiO)表面复合氧化物负载的Cu Ni K2 O催化剂。利用IR ,TPR ,TPD以及微反技术研究了K2 O助剂对CO2 和CH3OH在Cu Ni MoSiO催化剂表面上吸附和合成DMC(碳酸二甲酯 )反应性能的影响。结果表明 :K2 O助剂的加入 ,使CO2 在催化剂表面吸附强度增加 ,当K2 O含量达Cu Ni总量的 15 %时 ,CO2 在催化剂表面上吸附后生成K2 CO3;CH3OH在催化剂表面上的解离吸附态 (CH3O- H )的吸附强度减弱 ;CO2 和CH3OH在Cu Ni K2 O MoSiO催化剂表面反应主要产物为DMC ,H2 O ,CO和CH2 O。随着K2 O助剂的加入 ,反应转化率在 10 %之前增加 ,之后下降 ,DMC选择性稍有提高。副产物 (CO和CH2 O)的选择性下降。根据实验结果探讨了K2 O对催化剂表面活性中心的电荷分布的影响。  相似文献   

13.
The ground-state potential energy surface (PES) in the gas-phase H2/CO2/Ni(3D) system is investigated at the CCSD(T)//B3LYP/6-311+G(2d,2p) levels in order to explore the possible reaction mechanism of the reverse water gas shift reaction catalyzed by Ni(3D). The calculations predict that the C-O bond cleavage of CO2 assisted by co-interacted H2 is prior to the dissociation of the H2, and the most feasible reaction path for Ni(3D) + H2 + CO2 --> Ni(3D) + H2O + CO is endothermic by 12.5 kJ mol(-1) with an energy barrier of 103.9 kJ mol(-1). The rate-determining step for the overall reaction is predicted to be the hydrogen migration with water formation. The promotion effect of H2 on the cleavage of C-O bond in CO2 is also discussed and compared with the analogous reaction of Ni(3D) + CO2 --> NiO + CO, and the difference between triplet and singlet H2/CO2/Ni systems is also discussed.  相似文献   

14.
CO(2) reforming of CH(4) on Ni(111) was investigated by using density functional theory. On the basis of thermodynamic analyses, the first step is CH(4) sequential dissociation into surface CH (CH(4) --> CH(3) --> CH(2) --> CH) and hydrogen, and CO(2) dissociation into surface CO and O (CO(2) --> CO + O). The second step is CH oxygenation into CHO (CH + O --> CHO), which is more favored than dissociation into C and hydrogen (CH --> C + H). The third step is the dissociation of CHO into surface CO and H (CHO --> CO + H). This can explain the enhanced selectivity toward the formation of CO and H(2) on Ni catalysts. It is found that surface carbon formation by the Bouduard back reaction (2CO = C((ads)) + CO(2)) is more favored than by CH(4) sequential dehydrogenation. The major problem of CO(2) reforming of CH(4) is the very strong CO adsorption on Ni(111), which results in the accumulation of CO on the surface and hinders the subsequent reactions and promotes carbon deposition. Therefore, promoting CO desorption should maintain the reactivity and stability of Ni catalysts. The computed energy barriers of the most favorable elementary reaction identify the CH(4) activation into CH(3) and H as the rate-determining step of CO(2) reforming of CH(4) on Ni(111), in agreement with the isotopic experimental results.  相似文献   

15.
助剂对CH4,CO2和O2制合成气反应催化剂性能的影响   总被引:13,自引:0,他引:13  
考察了NiCaO-Al2O3催化剂中添加碱金属、碱土金属、稀土金属氧化物、CuO助剂及CaO含量对催化剂性能的影响。结果表明,10Ni-2K-2Cu15CaO-Al2O3催化剂对CH4、CO2和O2制合成气反应具有较高的催化活性、选择性和较好的抗积炭性能。通过TPR、CO-TPD、XPS和XRD对催化剂进行表征,发现K2O、CuO和CaO的添加削弱了活性组分Ni与载体Al2O3间的相互作用,增加Ni的电子密度,加速了CO与H2的脱附,从而抑制了CH4深度裂解积炭和CO歧化积炭。此外,这些助剂的添加也提高了Ni的分散度,增强了催化剂的抗积炭能力。  相似文献   

16.
The reaction of [(dippe)Ni(μ-H)](2) (A) (dippe = 1,2-bis(diisopropyl-phosphinoethane) with CO(2) in toluene afforded the carbonyl nickel(0) compounds of the type {(dippe)Ni(CO)](2)(μ-dippe)}(1) and (dippe)Ni(CO)(dippe==O)] (2), which were characterized by standard spectroscopic methods; complex (1) was also characterized by single crystal X-ray diffraction. Reaction of (A) with SO(2) yields the thiosulfate nickel(II) compound [Ni(dippe)(S(2)O(3))] (5), which was fully characterized by standard spectroscopic methods and X-ray crystallography. In both cases, a reduction reaction of CO(2) to CO and SO(2) to S(2)O(3)(2-) with (A) took place under mild conditions.  相似文献   

17.
The dehydrogenation and decarbonylation of ethylene glycol and ethanol were studied using temperature programmed desorption (TPD) on Pt(111) and Ni/Pt(111) bimetallic surfaces, as probe reactions for the reforming of oxygenates for the production of H2 for fuel cells. Ethylene glycol reacted via dehydrogenation to form CO and H2, corresponding to the desired reforming reaction, and via total decomposition to produce C(ad), O(ad), and H2. Ethanol reacted by three reaction pathways, dehydrogenation, decarbonylation, and total decomposition, producing CO, H2, CH4, C(ad), and O(ad). Surfaces prepared by deposition of a monolayer of Ni on Pt(111) at 300 K, designated Ni-Pt-Pt(111), displayed increased reforming activity compared to Pt(111), subsurface monolayer Pt-Ni-Pt(111), and thick Ni/Pt(111). Reforming activity was correlated with the d-band center of the surfaces and displayed a linear trend for both ethylene glycol and ethanol, with activity increasing as the surface d-band center moved closer to the Fermi level. This trend was opposite to that previously observed for hydrogenation reactions, where increased activity occurred on subsurface monolayers as the d-band center shifted away from the Fermi level. Extrapolation of the correlation between activity and the surface d-band center of bimetallic systems may provide useful predictions for the selection and rational design of bimetallic catalysts for the reforming of oxygenates.  相似文献   

18.
The Catalytic performances for methane steam reforming reaction ofNi/Al_2O_3(commercial), Ni/Al_2O_3 (developed surface )and Ni/Al_2O_3-R_xO_y (R israre earth oxide) Catalysts were investigated by means of X-ray diffraction,TG, SEM/ X-ray analysis, pulse gas chromatography,BET and Mercuryporsiniter techniques. The distribution of rear earth oxides on the supports,themetal-support (additives) interaction and the influence of rare earth oxideadditives on the dispersion of active components,catulytic activities,variationof nickel crystallites size,CO chemisorption,formation of NiAl_2O_4 as well asthe reducibility of the catalysts were examined.The presence of rare earthoxides in the Ni/Al_2O_3 (developed surface) results in great improvement ofstubility through suppressing the growth of Ni crystallites,the oxidation of themetallic Ni and the formation of NiAl_2O_4. The effect of heavy rare earth oxidesis more distinct than that of the light ones.Strong metal support interaction(SMSI) exists in Ni/Al_2O_3- R  相似文献   

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