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1.
CH_3自由基和O(~3P)反应机理的量子化学研究   总被引:4,自引:0,他引:4  
李来才  邓萍  李德华  田安民 《化学学报》2002,60(7):1186-1191
用分子轨道从头计算MP2(full)方法和密度泛函理论(DFT)中的B3LYP方法 研究了CH_3自由基和三线态O原子反应的微观机理,优化得到了反应途径上的反应 物、过渡态、中间体和产物的几何构型,通过振动分析对过渡态和中间体构型进行 了确认,在G3不平上计算了能量,同时用经典过渡态理论对该反应的绝对速率常数 进行了理论计算。研究结果表明:CH_3自由基与O(~3P)反应有四条不同的放热反 应通道,主反应通道为IM1→TS1→CH_2O + H,同时反应可彻底裂解生成CO, H_2 及H。  相似文献   

2.
C3H+与N反应的理论研究   总被引:7,自引:1,他引:7  
用密度泛函方法在QCISD(T)/6—311 G^**//B3LYP/6—311G^*水平上研究了气相反应C3H^ N的反应机理.得到了不同能量产物的可能的反应通道,获得反应势能面.整个反应为多通道反应,经过多个步骤完成,共找到9个中间体和11个过渡态,产物C3H^ N(P2)为能量较低的产物,通道3:IM5→TS4→IM6→TS5→IM7→TS7→IM8→P2为较为可行的反应通道.  相似文献   

3.
C_2h_3自由基与O_2反应机理的量子化学研究   总被引:1,自引:0,他引:1  
李来才  王欣  田安民 《化学学报》2002,60(3):457-462
用量子化学从头计算中UMP2(full)方法优化了C_2H_3自由基与O_2反应通道上 驻点(反应物、中间体、过渡态和产物)的几何构型,在Gaussian-3(G3)水平上计 算了它们的能量。在此基础上计算了该反应通道上各基元反应的反应活化能。通过 我们的研究发现,C_2H_3自由基与氧气反应存在着三元环、四元环和五元环反应机 理,且分别生成不同的产物,从反应活化能的计算结果扯CH_2O和CHO是反应的主要 产物,其次还可能生成CH_3 + CO_2, CH_2CO_2 + H, C_2H_2 + O_2H和COHCOH + H等产物,且它们生成几率逐渐减少,我们对生成产物CH_2O + CHO, CH_3 + CO_2, C_2H_2 + O_2H和COHCOH + H四条反应通道化学反应热的计算结果与实验吻 合较好。  相似文献   

4.
用密度泛函理论(DFT)对金属Ir4 cluster催化丙烯Propene加氢反应的反应机理进行了理论研究. 在B3LYP理论水平下优化了反应通道上反应物、中间体、过渡态和产物各驻点物种的几何构型, 构建了该反应的基态势能面. 计算结果表明, Ir4 cluster催化丙烯加氢反应, 主要通过3条反应通道(c,d和e)进行. 主反应通道c 是H1原子先经过中间体1加成到丙烯的边端C上形成中间体3, 然后H2原子经过渡态TS3—5, 中间体5和过渡态TS5-P加成到中间C上生成产物P. c通道无论从动力学角度还是热力学角度都是最有利的; 反应通道d和e中的最高势垒和通道c上的相比差别不大, 具有一定的竞争性, 是次通道.  相似文献   

5.
分别采用B3LYP,MP2方法在6-311++G(2df,pd)水平研究了甲醛光催化降解反应的微观机理,找到了可能的反应通道,预测反应产物为HCOOH与H2O.并得到了各反应通道的反应物、中间体、过渡态和产物的优化构型、谐振频率.成功地解释了实验结论.从键长和能量的变化角度,讨论了化学反应过程中化学键的变化规律,整个反应通道中各势能面均较低,从理论角度分析该反应室温下能够进行,为空气中的甲醛降解反应的实验研究提供理论依据.  相似文献   

6.
CCl2自由基与H2O分子反应动力学研究   总被引:2,自引:0,他引:2  
用213 nm激光光解CCl4产生CCl2自由基,用LP LIF技术测定了室温下基态CCl2自由基与H2O分子的反应速率常数为(5.45±0.95)×10-14 cm3•molecule-1•s-1.在G2MP2理论水平上计算了CCl2+H2O反应的最低单重态势能面,揭示了插入与加成 消除两种反应机理,得到了三个可能的产物通道:HCl+HClCO、HCl+trans ClCOH以及HCl+cis ClCOH.并用RRKM TST和传统过渡态理论计算了这三个通道的分支比及其温度效应.结果说明在低温下(273 K),插入机理的产物通道的分支比远大于加成 消除机理的产物通道, HCl+HClCO是主要产物,分支比为77.4%,其次是HCl+cis ClCOH,分支比为22.6%.而在高温下(3000 K),加成 消除机理的反应通道大于插入机理, HCl+trans ClCOH分支比为82.3%.  相似文献   

7.
用UB3LYP/6-311++G(d,p)和QCISD(单点能)的方法考察了CBr+O2反应在二重态势能面上的反应机理。研究发现该反应在高温过程中重要,且有两个产物通道,它们分别是BrCO+O和Br+CO2,其中前者为优势通道。为了弄清溴原子取代对次甲基与氧气反应的机理的影响,我们对CBr+O2反应与CH+O2反应的相似性和差异也作了讨论。结果表明:两反应的第一步都是CX(X=H,Br)自由基与氧气反应生成链状过氧化物XCOO,且溴原子取代对反应的活性、产物通道的数量和产物的形成过程等都有影响。  相似文献   

8.
用密度泛函理论研究了氧原子与氟代甲基自由基的反应.反应中出现的所有物种的平衡构型用B3LYP方法在6-311++G(2d, 2p)基组水平上进行了优化,同时对各物种进行了频率分析;在同一理论水平上计算了各反应通道的势能面变化,分析了反应物、中间体、过渡态、产物的振动模式随反应途径的变化关系,阐明了该多通道反应的反应机理.  相似文献   

9.
采用MP2和B3LYP两种计算方法,在6-31 G(d,p)的基组下,对气相中环丁烯负离子与N2O反应的微观机理进行了较为系统的计算研究,并在相同基组下进一步用QCISD方法在MP2优化构型的基础上进行了单点能校正.结果表明,该反应存在两条反应通道,每条反应通道又包含着三条反应路径,产物分别为乙烯基重氮甲基负离子与甲醛,同时也应能检测到少量的环丁烯酮负离子及N2等产物.其中,通道1是主反应通道,路径1为主反应路径,路径3是路径1和2的竞争反应.理论计算结果与实验预测基本一致.  相似文献   

10.
对基态碱金属原子Ba(1S)与ClO2分子的反应进行了量子化学从头计算,讨论并比较了二重态势能面上的两条不同的反应产物通道,结果表明,通道(1)-即生成氯化物的通道在能量上有利,反应的主要产物是BaCl和O2,这与实验结果一致,此外,对少数低激发态产物的生成进行了讨论。  相似文献   

11.
环氧丙烷低温热解过程的动力学研究, 已经进行了许多工作~[1,2,3], 但在较高温度条件下的热解过程尚不清楚. 因此我们利用化学激波管及相对速度常数法, 研究了在1045—1175K 温度范围内环氧丙烷(在NO中)的热解过程, 测定了热解过程的动力学参数。  相似文献   

12.
用密度泛函理论(DFT)在B3LYP/6-31G(d, p)的计算水平上研究了离子液中1-乙基-3-甲基咪唑阳离子(EMIM+)的4-H和5-H原子催化丁烯双键异构反应的可能途径,优化了反应体系的平衡态和过渡态的几何构型,分析了反应过程中键参数的变化,通过振动分析对平衡态和过渡态进行了验证. 计算结果表明, 离子液中的EMIM+首先通过4-H和5-H原子吸附丁烯, 进而催化丁烯的双键异构反应, EMIM+的4-H和5-H催化1-丁烯异构为2-丁烯的正反应活化能分别为204.2和207.3 kJ•mol-1,逆反应活化能约为220.9和223.8 kJ•mol-1, 反应为基元反应.  相似文献   

13.
1 INTRODUCTION Butene and its isomers are important petroleum raw materials. Isomerization reaction of butene plays a key role in the course of C4 alkylation and its reaction mechanism has captured the attention of chemists all along[1, 2]. As a green so…  相似文献   

14.
研究了含36个己氧基偶氮苯介晶基元的二代(G2)光致变色液晶树枝状高分子在氯仿和四氢呋喃溶液中的最大吸收波长,摩尔消光系数,反顺光异构化反应速率常数,光化学回复异构化正逆反应速率常数及其平衡常数,G2和G1的光致变色反应速率常数kp为10-1s-1,而含偶氮基元光致变色液晶聚硅氧烷的kp为10-8s-1,因此液晶树状高分子的光响应速率比后者快107倍.  相似文献   

15.
H3PO→H2POH异构化反应的直接动力学研究   总被引:3,自引:0,他引:3  
在QCISD(T)/6-311C++G(2df,2pd)//QCISD/6-311C++G(d,p)+ZPE水平上,对H3PO的异构化反应H3PO→(1)H2POH(trans)→(2)H2POH(cis)进行了计算研究.结果表明,H原子由P原子向O原子迁移反应(1)的能垒为250.0kJ/mol,是反应速率控制步骤,而O_H键绕P_O键旋转的构型转化反应(2)的能垒只为12.3kJ/mol.利用经典过渡态理论(TST)与变分过渡态理论(CVT)分别计算了反应(1)在200~2000K温度区间内的速率常数kTST和kCVT,获得了经小曲率隧道效应(SCT)及Eckart模型校正后的速率常数kTST/Eckart和kCVT/SCT.对只涉及H原子迁移的反应(1),量子力学隧道效应的影响在低温段非常明显,而变分效应对反应速率常数的影响很小.  相似文献   

16.
The complex potential energy surface and reaction mechanisms for the unimolecular isomerization and decomposition of methyl-nitramine (CH3NHNO2) were theoretically probed at the QCISD(T)/6-311+G*//B3LYP/6-311+G* level of theory. The results demonstrated that there are four low-lying energy channels: (i) the NN bond fission pathway; (ii) a sequence of isomerization reactions via CH3NN(OH)O; (IS2a); (iii) the HONO elimination pathway; (iv) the isomerization and the dissociation reactions via CH3NHONO (IS3). The rate constants of each initial step (rate-determining step) for these channels were calculated using the canonical transition state theory. The Arrhenius expressions of the channels over the temperature range 298-2000 K are k6(T)=1014:8e-46:0=RT , k7(T)=1013:7e-42:1=RT , k8(T)=1013:6e-51:8=RT and k9(T)=1015:6e-54:3=RT s-1, respectively. The calculated overall rate constants is 6.9£10-4 at 543 K, which is in good agreement with the experimental data. Based on the analysis of the rate constants, the dominant pathway is the isomerization reaction to form CH3NN(OH)O at low temperatures, while the NN bond fission and the isomerization reaction to produce CH3NHONO are expected to be competitive with the isomerization reaction to form CH3NN(OH)O at high temperatures.  相似文献   

17.
The double bond migration of butene catalyzed by 1-ethyl-3-methyl-imidazolium fluoride (EmimF) has been studied using quantum chemical method. The geometries of reactant, transition state and product for the isomerization have been optimized by density functional theory (DFT) at the B3PW91/6-31G(d,p), 6-311++G(d,p) and aug-cc-PVDZ levels. The computed results show that the 4-H atom on imidazole ring of EmimF has a good catalytic activity to the double bond migration of butene and the catalytic reaction of 1-butene to 2-butene is a synergetic and elementary process. The apparent activation energy of isomerization is about 197 kJ/mol.  相似文献   

18.
The isomerization products of fac- and mer-[Co(β-ala)_3] in neutral and acidic media were separated with Na~+-type SP-Sephaex C-25 column and determined by spectrophotometry. At high temperatures(>90 ℃)the fac-isomer readily isomerizes to mer-[Co(β-ala)_3] and simultaneously hydrolyzes to yield a brown slurry in neutral solution.However, in acidic solution hydrolysis does not occur, the products are mer-isomer and a small amount of red complex cation, which is strongly adsorbed at the top of SP-Scphadex column and would probably be the fac-[Co(β-ala)_2[Co(β-alaH)(H_2O]~+.At 90 ℃ the mer-[Co(β-ala)_3]is hydrolyzed rapidly to yield a brown precipitate in neutral solution and isomerizes in small amount to fac-isomer. In acidic solution the mer-isomer isomerizes slightly to fac-isomer, and at the top of SP-Sephadex column, a violet complex cation which would probably be mer-[Co(β-ala)_2(β-alaH)(H_2O]~+ is abserved.The kinetic parameters of isomerization of fac-[Co(β-ala)_3] in neutral, basic and acidic solutions have been determined with spectrophotometric method at 534 nm. The resufts obtained indicate that reaction rates v with respect to fac-[Co(β-ala)_3] in neutral, basic and acidic media are all in first order, and under constant initial concentration of fac-[Co(β-ala)_3] the reaction rates v with respect zation of fac-[Co(β-ala)_3] in neutral, [OH~-]=4.04×10~(-4) molL~(-1), [HCl]=1.56×10~(-2) molL~(-1) and [HClO_4]=1.56×10~(-2) molL~(-1) media at 90 ℃ are 0.0195, 57.3, 3.43 and 0.978 min~(-1) while the activation energies are 194.2, 103.1, 134.1 and 113.8 kJ.mol~(-1) respectively.  相似文献   

19.
The reaction mechanism of C6H5 + C6H5NO involving four product channels on the doublet-state potential energy surface has been studied at the B3LYP/6-31+G(d, p) level of theory. The first reaction channel occurs by barrierless association forming (C6H5)2NO (biphenyl nitroxide), which can undergo isomerization and decomposition. The second channel takes place by substitution reaction producing C12H10 (biphenyl) and NO. The third and fourth channels involve direct hydrogen abstraction reactions producing C6H4NO + C6H6 and C6H5NOH + C6H4, respectively. Bimolecular rate constants of the above four product channels have been calculated in the temperature range 300-2000 K by the microcanonical Rice-Ramsperger-Kassel-Marcus theory and/or variational transition-state theory. The result shows the dominant reactions are channel 1 at lower temperatures (T < 800 K) and channel 3 at higher temperatures (T > 800 K). The total rate constant at 7 Torr He is predicted to be k(t) = 3.94 x 10(21) T(-3.09) exp(-699/T) for 300-500 K, 2.09 x 10(20) T(-3.56) exp(2315/T) for 500-1000 K, and 1.51 x 10(2) T(3.30) exp(-3043/T) for 1000-2000 K (in units of cm3 mol(-1) s(-1)), agreeing reasonably with the experimental data within their reported errors. The heats of formation of key products including biphenyl nitroxide, hydroxyl phenyl amino radical, and N-hydroxyl carbazole have been estimated.  相似文献   

20.
The rate constant of the benzylperoxy isomerization reaction has been computed using 54 different levels of theory and has been compared to the experimental value reported at 773 K. The aim of this methodology work is to demonstrate that standard theoretical methods are not adequate to obtain quantitative rate constants for the reaction under study. The use of the elaborated CASPT2 method is essential to estimate a quantitative rate constant. Geometry optimizations and vibrational frequency calculations are performed using three different methods (B3LYP, MPW1K, and MP2) and six different basis sets (6-31G(d,p), 6-31+G(d,p), 6-31++G(d,p), 6-311G(d,p), 6-311+G(d,p), and cc-pVDZ). Single-point energy calculations are performed with the highly correlated ab initio coupled cluster method in the space of single, double, and triple (pertubatively) electron excitations CCSD(T) using the 6-31G(d,p) basis set, and with the CASPT2 level of theory with the ANO-L-VDZP basis set. Canonical transition-state theory with a simple Wigner tunneling correction is used to predict the high-pressure limit rate constants as a function of temperature. We recommend the use of the CASPT2/ANO-L-VDZP//B3LYP/cc-pVDZ level of theory to compute the temperature dependence of the rate constant of the four-center isomerization of the benzylperoxy radical. It is given by the following relation: k(600-2000 K) (in s (-1)) = (1.29 x 10 (10)) T (0.79) exp[(-133.1 in kJ mol (-1))/ RT]. These parameters can be used in the thermokinetic models involving aromatic compounds at high pressure. This computational procedure can be extended to predict rate constants for other similar reactions where no available experimental data exist.  相似文献   

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