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1.
本文研究了氧化石墨烯负载Pt单原子(Pt1/Gr-O)催化硼胺烷(NH3BH3)全水解反应机理,即一分子的NH3BH3生成三分子的氢气(H2)的过程. 在水解路径中,首先吸附的硼胺烷连续断裂两个B-H键生成第一分子的H2. 接着,一个H2O分子与*BHNH3基团(*表示吸附态)反应生成*BH(H2O)NH3,其中伸长的O-H键断裂后形成*BH(OH)NH3. 然后,第二个H2O与*BH(OH)NH3反应生成*BH(OH)(H2O)NH3,在指向Pt1/Gr-O表面的O-H断裂后,生成BH(OH)2NH3并脱附到水溶液中. 两个水分子脱氢产生的两个H原子脱附生成第二个H2分子,且Pt1/Gr-O催化剂恢复. 脱附后的BH(OH)2NH3在水溶液中水解生成第三个H2分子. 纵观整个水解反应,H2O分子和*BHNH3基团的结合是反应速控步,其反应能垒是16.1 kcal/mol. 因此,Pt1/Gr-O有希望成为室温催化NH3BH3全水解催化剂.  相似文献   

2.
王益军  王六定  杨敏  刘光清  严诚 《物理学报》2010,59(7):4950-4954
运用基于第一性原理的密度泛函理论,系统研究了处于外电场中分层掺B并吸附不同数目H2O碳纳米管体系的结构稳定性和电子场发射性能. 研究表明:第3层掺B并吸附5个H2O的B3CNT+5H2O体系结构最稳定,管帽处Mulliken电荷最密集,尤其与单独掺B的B3CNT和单独吸附H2O的B3CNT+5H2O相比,其Fermi能级处态密度分别  相似文献   

3.
本文对HOC2H3F可能解离通道的势能面进行从头算CCSD(T)/CBS//B3LYP/6-311G(d,p)计算,同时对速率常数进行Rice-Ramsperger-Kassel-Marcus计算. 生成主要产物CH2CHO+HF最有利的反应途径是OHC2H3F→i2→TS14→i6→TS9→i3→TS3→CH2CHO+HF,其中速率决定步骤是HF通过TS11从CO桥接位置解离,能量比反应物高3.8 kcal/mol. 借助中间态TS14,F原子从Cα迁移到Cβ位置生成CH2O+CH2F,然后通过中间态TS16,H从O迁移到Cα位置;通过中间态TS5,C-C键断裂生成产物,其能量比反应物低1.8 kcal/mol,比TS11低4.0 kcal/mol.  相似文献   

4.
采用广义梯度近似GGA,修正Perdew-Burke-Ernzerhof交换-关联泛函,以及周期性切片模型对O2、CO2和H2O在UN(001)表面的化学吸附行为进行非自旋极化水平的密度泛函理论计算. 在四个对称性化学位置条件下,对化学吸附能与分子和UN(001)表面之间距离的关系曲线进行优化. 结果表明O2、CO2和H2O分子的最稳定吸附位置分别为桥式平行、空心平行和桥式H  相似文献   

5.
采用密度泛函理论和slab模型,研究NH3在Ni单原子层覆盖的Pt(111)和WC(001)表面上的物理与化学行为,计算了Ni单原子覆盖表面的电子结构以及NH3的吸附与分解.表面覆盖的单原子层中,Ni原子的性质与Ni(111)面上的Ni原子明显不同.与Ni(111)相比,Ni/Pt(111)和Ni/WC(001)表面上Ni原子dz2轨道上的电子更多地转移到了其它位置,该轨道上电荷密度降低有利于NH3吸附.在Ni/Pt(111)和Ni/WC(001)面上NH3吸附能均大于Ni(111),NH3分子第一个N-H键断裂的活化能则明显比Ni(111)面上低,有利于NH3的分解,吸附能增大使NH3在Ni/Pt(111)和Ni/WC(001)面上更倾向于分解,而不是脱附.N2分子的生成是NH3分解的速控步骤,该反应能垒较高,说明N2分子只有在较高温度下才能生成.WC与Pt性质相似,但Ni/Pt(111)和Ni/WC(001)的电子结构还是有差异的,与Ni(111)表面相比,NH3在Ni/Pt(111)表面上分解速控步骤的能垒降低,而在Ni/WC(001)上却升高.要获得活性好且便宜的催化剂,需要对Ni/WC(001)表面做进一步改进,降低N2分子生成步骤的活化能.  相似文献   

6.
利用基质隔离红外光谱结合理论计算,研究了激光溅射获得的第五族金属原子和硫化氢分子的反应. 结果表明金属原子插入H2S的H-S化学键形成HMSH分子(M=V,Nb,Ta). 对Nb和Ta该HMSH分子重排为H2MS分子. HMSH分子和H2S进一步反应生成H2M(SH)2分子. 通过D2S和H234S同位素标定确定了产物的分子结构,同时我们用DFT(B3LYP和BPW91)理论计算预测了产物分子的能量、结构和振动频率. 通过DFT IRC计算研究了第五族金属原子和2S分子的反应机理. HVSH分子通过光照解离为VS和H2,然后通过退火可以发生VS和H2复合反应. 计算表明HVSH释放H2需要16.9 kcal/mol的活化能及吸热13.5 kcal/mol.  相似文献   

7.
金蓉  谌晓洪 《物理学报》2012,61(9):93103-093103
用密度泛函理论(DFT),在B3LYP/DZP水平上对H2O分子与VOx形成的团簇VOxH2O (x= 1---5)进行结构优化、能量和频率的计算,研究了团簇的稳定结构、稳定性和频率特性.结果表明VOxH2O (x= 1---5) 团簇的基态构型的电子态均为2A, 对称性均属C1对称点群,其中x= 1, 4, 5时基态构型中水分子已被解离.水分子倾向于吸附在团簇VOx上, 形成VOxH2O (x= 1---5)团簇. VOxH2O (x= 1---5)团簇中, VOxH2O (x= 1,4,5) 的化学活性小于VOxH2O (x= 2, 3)的化学活性.此外, H2O体系与VOx之间的结合强弱顺序为 VO4H2O > VO5H2O > VOH2O > VO3H2O > VO2H2O. VOH2O中离解出H原子的能量为2.88 eV和从VO5H2O中离解出OH基团的能量为2.38 eV, 均在可见光能量范围内,这两个化学过程有可能在可见光催化条件下进行.可以通过团簇的红外和拉曼谱特征, 初步判断水分子在VOxH2O团簇中是否离解.  相似文献   

8.
采用M06-2X和CCSD(T)高阶量化计算和传统过渡态理论研究硫酸催化乙二醛气体相水化反应.对HCOCHO+H2O, HCOCHO+H2O+H2O, HCOCHO+H2O+H2O, HCOCHO+H2O...H2SO4和HCOCHO+H2O+H2SO4五个路径的反应机理和速率常数进行了研究.计算结果表明硫酸具有较强的催化能力,能显著减小乙二醛水化反应的能垒,在CCSD(T)/6-311++G(3df,3pd)//M06-2X/6-311++G(3df,3pd)理论水平,当硫酸分子参与乙二醛水化反应时,反应能垒从37.15 kcal/mol减少至7.08 kcal/mol.在室温条件下,硫酸催化乙二醛水化反应的反应速率1.34×10-11 cm3/(molecule.s),是等量水分子参与乙二醛水化反应的速率的1012倍,大于乙二醛与OH自由基反应的反应速率1.10×10-11 cm3/(molecule.s).这表明大气条件下,硫酸催化乙二醛水化反应可以发生,同乙二醛与OH自由基反应相竞争.  相似文献   

9.
用周期性密度泛函方法对H2S在氧化石墨烯(GO)上的吸附和分解进行了理论计算, 讨论了H2S和GO上的羟基和环氧基团的反应过程.结果表明,反应过程是通过H2S或-SH上的H转移使得GO的环氧基开环和羟基氢化,当GO相反面存在羟基时有助于环氧基团的开环和羟基氢化反应.H2S在GO上吸附和分解到S原子的反应机理中引入了相应的中间态,计算两次脱氢过程能垒分别为3.2和10.4 kcal/mol,第二个H原子的转移是GO还原过程的速率决定步骤.结果还表明GO上的羟基和环氧基团有助于加强S原子和石墨烯的结合.  相似文献   

10.
本文介绍F?(H2O)+CH3I→[FCH3I]?+H2O在交叉分子束碰撞能量0.3∽2.6 eV的配体交换动力学成像结果. 产物的动能受到弱键结合配合物的稳定性的影响,大量水分子的内部激发不利于中间物有效的能量重新分配,随着碰撞增加,低动能受到抑制. 在0.3 eV时,内部亲核取代非常重要,为形成I?和I?(H2O)的竞争性亲核取代途径提供了依据.  相似文献   

11.
《Physics letters. A》2014,378(30-31):2184-2190
The electronic sensitivity of pristine, Ni- and Si-doped graphynes to ammonia (NH3) molecule was investigated using density functional theory, including dispersion correction. It was found that NH3 is weakly adsorbed on the sheet, releasing energy of 2.9–4.4 kcal/mol, and the electronic properties of the sheet are not significantly changed. Although both Ni-doping and Si-doping make the sheet more reactive and sensitive to NH3, Si-doping seems to be a better strategy to manufacture NH3 chemical sensors because of higher sensitivity. Our calculations show that the HOMO/LUMO gap of the Si-doped sheet is significantly decreased from 2.13 to 1.46 eV after the adsorption of NH3, which may increase the electrical conductance of the sheet. Therefore, the doped sheet might convert the presence of NH3 molecules to electrical signals. Moreover, the shorter recovery time of the Si-doped sheet is because of the middle adsorption energy of 39.3 kcal/mol in comparison with 55.1 kcal/mol for the Ni-doped sheet.  相似文献   

12.
Potential application of single-walled C3N nanotubes was investigated as chemical sensors for acetone molecules based on the density functional theory calculations. It was found that the pristine nanotube weakly adsorbs an acetone molecule with the adsorption energy of − 9.7 kcal/mol, and its electronic properties are not sensitive to this molecule. By replacing a C atom with a Si atom, the nanotube becomes a p-type semiconductor. The adsorption energy of the acetone molecule on the Si-doped nanotube becomes much more negative (Ead=−67.4 kcal/mol). The adsorption process leads to a sizable increase in the resistance of the Si-doped tube, thereby, it can show the presence of acetone molecule, creating an electronic signal. Also, the sensitivity of these devices can be controlled by the doping level of Si atoms. By increasing the number of dopant atoms from 1 to 4, the sensitivity is gradually increased.  相似文献   

13.
Using first-principles calculations, we systematically study the adsorption behavior of a single molecular H2O on the Be(0001) surface. We find that the favored molecular adsorption site is the top site with an adsorption energy of about 0.3 eV, together with the detailed electronic structure analysis, suggesting a weak binding strength of the H2O/Be(0001) surface. The adsorption interaction is mainly contributed by the overlapping between the s and pz states of the top-layer Be atom and the molecular orbitals 1b1 and 3a1 of H2O. The activation energy for H2O diffusion on the surface is about 0.3 eV. Meanwhile, our study indicates that no dissociation state exists for the H2O/Be(0001) surface.  相似文献   

14.
Isik Onal  Sezen Soyer 《Surface science》2006,600(12):2457-2469
Density functional theory (DFT) calculations performed at B3LYP/6-31G∗∗ level are employed to study water and ammonia adsorption and dissociation on (1 0 1) and (0 0 1) TiO2 anatase surfaces both represented by totally fixed and partially relaxed Ti2O9H10 cluster models. PM3 semiempirical calculations were also conducted both on Ti2O9H10 and Ti9O33H30 clusters in order to assess the effect of cluster size. Following dissociation, the adsorption of H2O and NH3 by H-bonding on previously H2O and NH3 dissociated systems, respectively are also considered. It is found that the adsorption energies and geometries of water and ammonia molecules on (1 0 1) and (0 0 1) anatase cluster models depend on surface relaxation. The vibration frequency values are also calculated for the optimized geometries. The adsorption energies and vibration frequency values computed are compared with the available theoretical and experimental literature.  相似文献   

15.
In the framework of density functional theory (DFT), we calculated the electronic structures and the quadrupole coupling constants (CQ) in the pristine and carbon doped (C-doped) beryllium oxide nanotubes (BeONTs) for the first time. The pristine and C-doped forms of representative (10, 0) zigzag and (5, 5) armchair models of BeONTs were considered in this study. The structures are allowed to relax by performing all atomic optimization. Formation energies indicate that C-doping of Be atom (CBe form) could be more favorable than C-doping of O atom (CO form) in both zigzag and armchair BeONTs. Gap energies and dipole moments detected the effects of dopant in the (5, 5) armchair models; however, those parameters did not detect any significant changes in the C-doped (10, 0) zigzag BeONT models. The calculated nuclear quadrupole coupling constant for the Be and O nuclei reveal that the pristine models can be divided into layers of nuclei with an equivalent electrostatic environment such that those nuclei at the ends of tubes end up in a strong electrostatic environment when compared to the other nuclei along the length of tubes. Comparison with the available data on the pristine BeONTs reveals the influence of C-doping on the CQ parameters of Be and O atoms in the C-doped structures. For most lattice sites, the degree of influence on the CQ parameters of the zigzag model is larger than that of the armchair model. The calculations were performed based on the B3LYP DFT method and 6-31G standard basis sets using the Gaussian 09 program package.  相似文献   

16.
Mechanism and kinetics of NH2OH + OOH and NH2CH3 + OOH reactions were studied at the B3LYP and M062X levels of theory using the 6-311++G(3df, 3pd) basis set. The NH2OH + OOH and NH2CH3 + OOH reactions proceed through different paths which lead to different products. Transition state structure and activation energy of each path were calculated. The calculated activation energies of hydrogen abstraction reactions were smaller than 25 kcal/mol and of substitution reactions are in the range of 50–70 kcal/mol. The rate constants were calculated using transition state theory (TST) modified for tunneling effect at 273–2000 K.  相似文献   

17.
The binding energy of a hydrogen molecule on metal atoms (Li, Be, Na, and Mg) attached to aromatic hydrocarbon molecules (benzene and anthracene) was calculated using an ab initio molecular orbital method at the MP2(FC)/cc-pVTZ level with basis set superposition error (BSSE) correction. The energy tended to become more negative as the metal atom had a more positive charge and a smaller radius. The energies of Li2C6H6-H2, Li2C14H10-H2, Na2C14H10-H2, and MgC14H10-H2 were −2.7 to −2.2, −4.0 to −3.1, −2.8 to −0.3, and −1.3 kcal/mol, respectively. Most of these energies were more negative than those on the hydrocarbons without metal atoms (ca. −1 kcal/mol). Analyzing the Lennard–Jones type potential with the parameters determined by the MP2 calculations, it was found that these energies mainly consisted of the induction force caused by the positive charge of the metal atom and the dispersion force from the nearest C6-ring. The energy of BeC14H10-H2 was more negative (−8.6 kcal/mol) than of the other complexes. The hydrogen molecule in this complex had a comparatively longer H–H distance and a more positive H2 charge than the others. These data suggest that the hydrogen adsorption on this complex involves a charge transfer process in addition to physisorption interactions. The hydrogen binding energies in some Li2C14H10-H2 systems (∼−4.0 kcal/mol) and BeC14H10-H2 are promising to operate hydrogen storage/release at ambient temperature with moderate pressure.  相似文献   

18.
The results of a photoelectron study using ultraviolet 40.81 eV photons (UPS) of the outermost bands of the molecular solids NH3 and H2O are reported. The binding energies, the energy separation, the band widths and the branching ratio of the two outermost bands of solid NH3 are found not to be significantly different from the 3al and 1e molecular orbital states of the gaseous NH3 UPS spectrum. This implies that hydrogen bonding has not produced any significant change in the electronic structure of the valence bands of solid NH3. Because of a much smaller intermolecular hydrogen bond length in solid H2O compared to that in solid NH3, the hydrogen bond does, however, produce a significant change in the valence bands of H2O on solidification, and because of the orbital geometry it predominantly affects the 3al molecular orbital state.  相似文献   

19.
Density functional theory (DFT) based ab initio calculations were done to monitor the formaldehyde (CHOH) adsorptive behavior on pristine and Ni-decorated graphene sheet. Structural optimization indicates that the formaldehyde molecule is physisorbed on the pristine sheet via partly weak van der Waals attraction having the adsorption energy of about −15.7 kcal/mol. Metal decorated sheet is able to interact with the CHOH molecule, so that single Ni atoms prefer to bind strongly at the bridge site of graphene and each metal atom bound on sheet may adsorb up to four CHOH. The findings also show that the Ni decoration on graphene surface results in some changes in electronic properties of the sheet and its Eg is remained unchanged after adsorption of CHOH molecules. It is noteworthy to say that no bond cleavage was observed for the adsorption of CHOH on Ni-decorated graphene.  相似文献   

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