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1.
吕恩静 《分子催化》2012,26(4):333-339
制备了一系列Ni-Mo/γ-Al2O3催化剂,并采用X射线衍射、乙酸程序升温表面反应、NO-红外漫反射光谱、乙酸(或乙醇)-红外漫反射光谱等表征手段系统研究了助剂Mo的加入对Ni基催化剂的物化性质、乙酸加氢脱氧(HDO)产物、HDO活性位及乙酸(或乙醇)吸附形态的影响.结果表明,Mo的加入可提高活性组分NiO的分散度,且能抑制乙酸C-C键的断裂;Mo的加入可提供氧空穴,以促进乙酸C-O键及中间产物乙醇C-O键的断裂,显著提高了Ni基催化剂的HDO活性和产物C2H6的选择性.表明Mo的加入改变了Ni催化剂HDO的催化作用机理.  相似文献   

2.
采用基于密度泛函理论的第一性原理方法和平板模型研究了CH3SH分子在Au(111)表面的吸附构型和电子结构. 系统地计算了S原子在不同位置以不同方式吸附的系列构型, 计算结果表明, CH3SH分子倾向于吸附在top位上, S-C键相对于Au表面法线的夹角为62°~78°|而S-H键断裂后CH3S_H则倾向于吸附在bri-fcc位上, S-C键相对于Au(111)表面法线的夹角为49°~57°. 比较分析CH3SH分子和CH3S_H的吸附, 发现CH3SH分子倾向于不解离吸附, 表面温度的提升和缺陷的出现可能促使S-H键的断裂. 通过比较S原子在独立的CH3SH分子和吸附状态下的局域态密度, 发现S-H键断裂后S原子和表面的键合强于S-H键未断裂时S原子和表面的键合. 扫描隧道显微镜(STM)图像模拟显示了CH3SH和CH3S_H在Au(111)表面吸附的3个典型的STM图像.  相似文献   

3.
甲醇在Au(111)表面吸附的密度泛函研究   总被引:2,自引:0,他引:2  
 采用基于第一性原理的密度泛函理论和周期平板模型相结合的方法,对CH3OH分子在Au(111)表面top, fcc, hcp和bridge位的吸附模型进行了构型优化、能量计算以及Mulliken布居分析,结果表明top位是较有利的吸附位. 吸附的CH3OH解离产生甲氧基CH3O和H, 对它们在Au(111)面的吸附进行的计算表明, bridge和fcc位分别是二者的最佳吸附位. 对过渡态的计算给出了CH3OH在Au表面解离吸附的可能机理: 首先发生 O-H 键的断裂,继而生成甲氧基中间体.  相似文献   

4.
单原子合金是指活性金属原子分散在Cu、Ag或Au载体上所构成的催化剂,近年来已成为单原子催化研究中的一颗“新星”.单原子合金上孤立活性位点与载体金属的电子结构不同,具有奇异的电子结构,故通常表现出独特的催化行为.目前尚缺乏一种可靠的单原子合金催化特性描述符.本文系统地考察了甲烷、丙烷和乙苯在15种Rh、Ir、Ni、Pd和Pt掺杂Cu(111)、Ag(111)和Au(111)单原子合金上初始C-H键活化.密度泛函计算表明,烷基C-H键的活化能垒与d带中心和H原子吸附相关较差,而与反应能之间相关性较好.理论分析表明,C原子在顶位的吸附与C-H活化过渡态之间存在着轨道相互作用的相似性,不仅涉及到σ对■轨道给予,也涉及dxy/dyz轨道的π反馈.据此,C原子吸附能与甲烷、丙烷和乙苯C-H键活化能也具有很强的相关性(R2>0.9).  相似文献   

5.
NAD(P)H辅酶氧化还原反应模拟研究在生物有机化学中一直占有显著的位置。Hantzsch 1,4-二氢吡啶作为NAD(P)H辅酶的一种类似物,不仅在有机合成、医药、生化等方面,而且在辅酶NAD(P)H模拟反应研究中均具有广泛的应用[1]。虽然Hantzsch 1,4-二氢吡啶与生物活性分子的反应已进行了大量的研究,但其反应机理即Hantzsch 1,4-二氢吡啶中1位N-H键和4位C-H键孰先孰后断裂仍存在较大争议。若能测得Hantzsch 1,4-二氢吡啶及其离子基中N-H和C-H键的断裂能,应能为阐释其反应机理提供有说服力的依据。  相似文献   

6.
 采用量子化学中的密度泛函理论结合平板周期模型方法,研究了苯在Ag(100)面上的吸附方式和相对稳定性. 通过对不同吸附位置的吸附能和几何构型参数的比较发现,苯在Ag(100)表面的吸附属于较强的化学作用,穴位吸附的稳定性优于桥位,顶位吸附最不稳定. 吸附的苯分子的平衡构型发生扭曲, C-C键有较大程度的伸长; C-H键的键长基本不变,但是偏离苯环平面,并背离Ag(100)表面. 在吸附过程中,电子由苯向表面银原子转移. 本文给出了详细的轨道示意图和电荷布居分析,并且与相关的实验和理论研究结果进行了比较.  相似文献   

7.
采用密度泛函理论(DFT)的B3LYP方法,以原子簇Rh13(9,4)为模拟表面,在6-31G(d,p)与Lanl2dz基组水平上,对甲氧基在Rh(111)表面的四种吸附位置(fcc、hcp、top、bridge)的吸附模型进行了几何优化、能量计算、Mulliken电荷布局分析以及前线轨道的计算。结果表明,当甲氧基通过氧与金属表面相互作用时,在bridge位的吸附能最大,吸附体系最稳定,在top位转移的电子数最多;吸附于Rh(111)面的过程中C—O键被活化,C—O键的振动频率发生红移。  相似文献   

8.
采用密度泛函理论对CO与钯团簇的相互作用进行了系统研究.结果表明,PdnCO(n=1-8)体系的最低能量结构是在Pdn(n=1-8)团簇最低能最结构或亚稳态结构的基础上吸附CO生长而成;CO的吸附以端位吸附为主,其吸附没有改变Pdn团簇的结构;CO分子在Pdn团簇表面发生的是非解离性吸附.与优化的CO键长(0.1166 nm)相比,除了n=2,团簇PdnCO的C-O键长为0.1167-0.1168 nm,吸附后C-O键长变化较小,CO分子被活化程度较小.电荷集居数分析表明,CO的吸附对Pdn团簇的影响比较小;二阶能量差分表明,n=4,6的团簇是相对稳定的团簇.  相似文献   

9.
采用密度泛函-广义梯度近似(DFT-GGA)方法对CO吸附在Rh(111)表面上的结构和振动特征进行了研究, 获得了吸附结构, 吸附能和振动频率. 计算结果表明, 在低覆盖度下最稳定的吸附位置为顶(top)位置, 而在高覆盖度下, 一个CO分子占据top位置, 另外两个分子占据凹陷(hollow)位置. 振动分析表明, C-O伸缩振动频率随着覆盖度的增加而增大. 计算的吸附结构和振动频率都与实验结果吻合较好.  相似文献   

10.
采用基于第一性原理的密度泛函理论结合周期平板模型方法, 研究了甲醇分子在FeS2(100)完整表面的吸附与解离. 通过比较不同吸附位置的吸附能和构型参数发现: 表面Fe位为有利吸附位, 甲醇分子通过氧原子吸附在表面Fe位, 吸附后甲醇分子中的C―O键和O―H键都有伸长, 振动频率发生红移; 甲醇分子易于解离成甲氧基CH3O和H, 表面Fe位仍然是二者有利吸附位. 通过计算得出甲醇在FeS2(100)表面解离吸附的可能机理: 甲醇分子首先发生O―H键的断裂, 生成甲氧基中间体, 继而甲氧基C―H键断裂, 得到最后产物HCHO和H2.  相似文献   

11.
The structure of hydroxymethyl hydroperoxide (HOCH(2)OOH) (HMHP) has been examined using coupled cluster and multireference configuration interaction methods to study the excited states and probable photodissociation products. The results are compared to experiments. The vertical excitation energies for several excited states of HOCH(2)OOH are presented as well as the excited state energies along the O-O, O-H, C-O, and C-H dissociation pathways. The results help in the interpretation of experimental UV absorption spectra and elucidate the photodissociation mechanism of HMHP under tropospheric conditions.  相似文献   

12.
The adsorption of carbon monoxide on single-crystal transition metal surfaces has been the subject of numerous studies, because it has served as a model system for the adsorption of small molecules on transition metal surfaces, and its industrial importance is obvious in such areas as catalytic reaction. The bonding of carbon monoxide to rhodium is of special interest since this metal catalyzes the hydrogenation of CO to produce hydrocarbons in both heterogeneous and homogeneous media, and it …  相似文献   

13.
The physical and chemical properties of bimetallic nanoparticles can be optimized by tuning the particle composition. In this study, we identified CO adsorption and dissociation energetics on five Pt-Mo nanoparticles at different concentrations, the lowest energy Pt7, Pt6Mo, Pt5Mo2, Pt4Mo3, and Mo7 clusters. We have shown that the CO adsorption and dissociation energies and preferred CO adsorption sites are largely dependent on the composition of the nanoparticles. As the Mo concentration increases, the strength of the C-O internal bond in the adsorption complex decreases, as indicated by a decrease in the C-O stretching frequency. Also, more Mo sites in the nanoparticle become available for CO adsorption, and the preferred CO adsorption site switches from Pt to Mo. For these reasons, dissociation of CO is energetically favorable on Pt4Mo3 and Mo7. On both compositions, we have shown that the dissociation paths begin with CO adsorbed on a Mo site in a multifold configuration, in particular in a tilted configuration. These findings provide insight on the effects of the composition on the chemical and catalytical properties of Pt-Mo nanoparticles, thereby guiding future experiments on the synthesis of nanoparticles, especially those that may be suitable for various desired applications containing CO.  相似文献   

14.
15.
Density functional theory (DFT) and periodic slab model have been used to systemically study the adsorption and dissociation of NO and the formation of N(2) on the Ir(100) surface. The results show that NO prefers the bridge site with the N-end down and NO bond-axis perpendicular to the Ir surface, and adsorption to the top site is only 0.05 eV less favorable, whereas the hollow adsorption is the least stable. Two dissociation pathways for the adsorbed NO on bridge or top site are located: One is a direct decomposition of NO and the other is diffusion of NO from the initial state to the hollow site followed by dissociation into N and O atoms. The latter pathway is more favorable than the former one due to the lower energy barrier and is the primary pathway for NO dissociation. Based on the DFT results, microkinetic analysis suggests that the recombination of two N adatoms on the di-bridge sites is the predominant pathway for N(2) formation, whereas the formation of N(2)O or NO(2) is unlikely to occur during NO reduction. The high selectivity of Ir(100) toward N(2) is in good agreement with the experimental observations.  相似文献   

16.
Density functional theory of water-gas shift reaction on molybdenum carbide   总被引:1,自引:0,他引:1  
The density functional theory (DFT) of the water-gas shift (WGS) reaction over molybdenum carbide was studied with the aim of understanding the dissociation of H(2)O, the OH group, and CO to determine on what sections of molybdenum carbide CO(2) and H(2) formed and whether they played a role in the reaction. The energy diagram of each elementary step, the reaction of the hydrogen and oxygen atoms with CO, and the transition state for this elementary step were also studied. The IR spectra of the CO adsorption was experimentally analyzed for the identification of several candidates of the CO adsorption modes. The adsorptions of the threefold Mo site (a) with and (b) without the underlying C atom of the second layer have the second and highest adsorption energies of -281.59 and -321.00 kJ/mol, respectively. The IR data showed that the bands at 1626 cm(-1) from the IR experiments are (a) the nearest adsorption of the threefold Mo site with the underlying C atom at the calculated/corrected band of 1621 cm(-1). The calculated/corrected threefold adsorption (b) had the highest adsorption energy but exhibited an IR band at 1147 cm(-1) which was not observed in the experimental data. The C-O bond length increased to 1.49 from 1.36 after the H(2)O adsorption (b), suggesting the dissociation of C-O after the H(2)O coadsorption. The WGS reaction on the beta-Mo(2)C(001) slab carbide was calculated and took place as follows: H(2)O was dissociated into OH and H on the Mo(2)C surface and the OH subsequently dissociated into H and O atoms. CO approached the O atom to form CO(2).  相似文献   

17.
NO在氧预吸附Ir(100)表面吸附和解离的第一性原理研究   总被引:1,自引:0,他引:1  
采用第一性原理密度泛函理论和周期性平板模型研究了NO在O预吸附Ir(100)表面的吸附和解离, 并考察了预吸附的O对可能产物N2, N2O和NO2的选择性的影响. 优化得到反应过程中初态、 过渡态和末态的吸附构型, 并获得反应的势能面信息. 计算结果表明, NO在O预吸附表面最稳定的吸附位是桥位, 其次是顶位. 桥位和顶位的NO在表面存在两条解离通道, 即直接解离通道和由桥位和顶位扩散到平行空位, 继而发生N-O键断裂生成N原子和O原子的解离通道. 此分离机理与洁净表面上NO解离机理相同, 但后一种解离方式优于前一种, 是NO在表面上解离的主要通道. 预吸附的O原子在不同程度上抑制了NO的解离, 导致桥位和顶位NO解离互相竞争. 在O预吸附Ir(100)表面, N2气是唯一的产物, 不会有副产物N2O和NO2的生成, 与实验结果一致. 预吸附的O在N/O低覆盖度下几乎不影响N2气的生成, 但在较高覆盖度下则促进了N2气的生成.  相似文献   

18.
Adsorption of methanol and methoxy at four selected sites(top,bridge,hcp,fcc)on Cu(111)surface has beeninvestigated by density functional theory method at the generalized gradient approximation(GGA)level.The cal-culation on adsorption energies,geometry and electronic structures,Mulliken charges,and vibrational frequenciesof CH_3OH and CH_3O on clean Cu(111)surface was performed with full-geometry optimization,and compared withthe experimental data.The obtained results are in agreement with available experimental data.The most favoriteadsorption site for methanol on Cu(111)surface is the top site,where C-O axis is tilted to the surface.Moreover,the preferred adsorption site for methoxy on Cu(111)surface is the fcc site,and it adsorbs in an upright geometrywith pseudo-C_(3v) local symmetry.Possible decomposition pathways also have been investigated by transition-statesearching methods.Methoxy radical,CH_3O,was found to be the decomposition intermediate.Methanol can be ad-sorbed on the surface with its oxygen atom directly on a Cu atom,and weakly chemisorbed on Cu(111)surface.Incontrast to methanol,methoxy is strongly chemisorbed to the surface.  相似文献   

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