共查询到19条相似文献,搜索用时 62 毫秒
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本文采用CCSD(T)/aug-cc-pVTZ//B3LYP/aug-cc-pVTZ方法构建了NO2 + HSO反应的单、三重态势能面,并对主通道速率常数进行了计算。研究结果表明,该反应在单[R1(HN(O)O + 1SO)、R2(cis-HONO + 1SO)和R3 (trans-HONO + 1SO)]、三重态[R6(HN(O)O + 3SO)、R7(cis-HONO + 3SO)和R8(trans-HONO + 3SO)]均存在3条抽氢反应通道,在单[R4(NO + HS(O)O)和R5(H + SO2 + NO)]、三重态[R9(HS(O)O + NO)和R10(H + SO2 + NO)]均存在两条抽氧通道,其中单重态抽氢通道R2 (cis-HONO + 1SO)是NO2 + HSO反应主通道。利用传统过渡态理论(TST)并结合Wigner校正,计算了上述10条通道在200 ~ 1000 K温度范围内的速率常数。计算结果表明,NO2 + HSO反应主通道在298 K时的速率常数(7.78×10-13cm3?molecule-1?s-1)与实验值(9.6×10-12 cm3?molecule-1?s-1)相吻合。此外,水分子影响主通道R2(cis-HONO + 1SO)经历了NO2 + H2O…HSO和 NO2 + H2O…HSO(HSO + NO2…H2O)两条反应通道,且两条通道的能垒分别比R2升高了49.97和20.43 kcal?mol-1,说明在实际大气环境中水分子对NO2 + HSO反应几乎没有影响。 相似文献
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在QCISD(T)/6-311++G(d,p)和B3LYP/6-311++G(d,p)级别上研究了HNCS与Cl原子的反应机理. 并应用经典过渡态理论和正则变分过渡态理论结合小曲率隧道效应, 计算了200-2500 K温度范围内各反应通道的速率常数. 结果表明, HNCS与Cl原子反应存在3个反应通道. 当温度低于294 K时, 生成HCl+NCS的夺氢反应(a)是优势通道, 温度高于294 K时, 生成HNC(Cl)S的加成反应(c)为主反应通道, Cl进攻N的反应通道(b)因能垒较高而难以进行. 相似文献
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氧原子与二硫化碳反应的机理 总被引:3,自引:0,他引:3
用从头计算法、内禀反应坐标和电子密度拓扑分析方法研究了3P态氧原子与二硫化碳的反应.找到了分别形成CS SO,S OCS和S2 CO三个反应通道上的极小点和过渡态.采用UHF/631G进行几何构型优化,并在UMP2/631G水平上进行能量校正.三个反应通道上的稳定点和过渡态都经内禀反应坐标(IRC)跟踪得以确认,并用电子密度拓扑分析方法考察了反应过程中化学键的变化.计算结果表明,反应过程中所有稳定点和过渡态都具有Cs对称性,即对每个反应通道而言在整个反应过程中分子始终保持在同一平面内.在三个反应通道中,第一个反应通道O CS2→CS SO由于具有较小的活化能而更容易发生,与实验结果相一致.文中对反应机理进行了较详细的讨论. 相似文献
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在G3B3,CCSD(T)/6-311++G(d,p)//B3LYP/6-311++G(d,p)水平上详细研究了CH3SH与基态NO2的微观反应机理.在B3LYP/6-311++G(d,p)水平得到了反应势能面上所有反应物、过渡态和产物的优化构型,通过振动频率分析和内禀反应坐标(IRC)跟踪验证了过渡态与反应物和产物的连接关系.在CCSD(T)/6-311++G(d,p)和G3B3水平计算了各物种的能量,得到了反应势能面.利用经典过渡态理论(TST)与变分过渡态理论(CVT)并结合小曲率隧道效应模型(SCT),分别计算了在200~3000K温度范围内的速率常数kTST,kCVT和kCVT/SCT.研究结果表明,该反应体系共存在5个反应通道,其中N进攻巯基上H原子生成CH3S+HNO2的通道活化势垒较低,为主要反应通道.动力学数据也表明,该通道在200~3000K计算温度范围内占绝对优势,拟合得到的速率常数表达式为k1CVT/SCT=1.93×10-16T0.21exp(-558.2/T)cm3·molecule-1·s-1. 相似文献
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利用从头算直接动力学方法,研究反应Si HCl→SiCl H的动力学性能,在QCISD/6-311+G(d,p)和CCSD(T)/aug-cc-pvtz(单点)水平上,得到体系的势能面信息,进而利用变分过渡态理论计算了反应的速率常数及其与温度的关系。计算结果与实验符合得很好。 相似文献
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在B3LYP/6-311++G(d,p)水平上研究了CH3SH与CN·自由基的反应机理.找到了三个可能的反应通道,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.通过内禀反应坐标(IRC)跟踪确认了稳定点与过渡态的连接关系.在CCSD/6-311++G(d,p)水平上进行能量校正,成功地解释了Brian等的实验结论.通过对反应进程中一些重要点的电子密度拓扑分析,讨论了反应进程中化学键的变化规律,发现了六元环状过渡结构. 相似文献
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The reaction CHClBr·+NO2 was investigated via quantum chemical methods and kinetic calculations. The reaction mechanism on the singlet potential energy surface(PES) was considered by B3LYP method, and the energies were calculated at the CCSD(T) and CASPT2 levels of theory. The rate constants and the ratios of products were obtained by utilizing VTST and RRKM methods over wide temperature and pressure ranges. Our results indicate that carbon-to-nitrogen approach via a barrierless process is preferred in the initial association of CHClBr· and NO2. The dominant product is BrNO+CHClO(P1), which agrees well with the experimental observation. P2(ClNO+CHBrO) and P3(HNO+CBrClO) may also have minor contributions to the reaction. The calculated overall rate constants are independent of pressure and consistent with the experimental data, which can be fitted with the following equation over the temperature range of 200—1500 K: k(T)=2.31×10-15T0.99 exp(771/T). Compared with reaction CH2Br·+NO2, reaction CHClBr·+NO2 has decreased the overall rate constants. 相似文献
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The potential energy surface for the CH3S NO2 reaction has been studied using the ab initio G3(MP2) method. A variety of possible complexes and saddle points along the minimum energy reaction paths have been characterized at UMP2 (full)/6-31G(d) level. The calculations reveal dominating reaction mechanisms of the title reaction: CH3S NO2 firstly produce intermediate CH3SONO,then break up into CH3SO NO. The results are valuable to understand the atmospheric sulfur compounds oxidation mechanism. 相似文献
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The reactions Br + NO2 + M → BrNO2 + M (1) and I + NO2 + M → INO2 + M (2) have been studied at low pressure (0.6-2.2 torr) at room temperature and with helium as the third body by the discharge-flow technique with EPR and mass spectrometric analysis of the species. The following third order rate constants were found k1(0) = (3.7 ± 0.7) × 10?31 and k2(0) = (0.95 ± 0.35) × 10?31 (units are cm6 molecule?2 s?1). The secondary reactions X + XNO2 → X2 + NO2 (X = Br, I) have been studied by mass spectrometry and their rate constants have been estimated from product analysis and computer modeling. 相似文献
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NCS自由基与NO反应动力学的理论研究 总被引:6,自引:1,他引:6
用量子化学密度泛函理论B3LYP/6-31+G*和高级电子相关校正的偶合簇[CCSD(T)/6-311+G*]方法,对NCS自由基与NO反应的机理和动力学进行了理论研究,得到了体系的势能面信息和可能的反应机理.计算了反应的热力学参数及反应能垒.采用传统过渡态理论计算了各反应通道的速率常数.研究结果表明,NCS自由基与NO反应中存在4个反应通道,产物分别为OCS+N2,CS+N2O,ONS+CN和ONCNS.从能量变化和反应速率两方面考虑,NCS+NOOCS+N2应为主反应通道. 相似文献
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Quasi-Classical Trajectory Investigation of H+SO$ _{2} \rightarrow $OH+SO Reaction on Full-Dimensional Accurate Potential Energy Surface 下载免费PDF全文
The reaction H+SO\begin{document}$ _2 $\end{document} \begin{document}$ \rightarrow $\end{document} OH+SO is important in the combustion and atmospheric chemistry, as well as the interstellar medium. It also represents a typical complex-forming reaction with deep complexes, serving as an ideal candidate for testing various kinetics theories and providing interesting reaction dynamical phenomena. In this work, we reported a quasi-classical trajectory study of this reaction on our previously developed accurate full-dimensional potential energy surface. The experimental thermal rate coefficients over the temperature range 1400 K\begin{document}$ \leq $\end{document} \begin{document}$ T $\end{document} \begin{document}$ \leq $\end{document} 2200 K were well reproduced. For the reactant SO\begin{document}$ _2 $\end{document} being sampled at the ground ro-vibrational state, the calculated integral cross sections increased slightly along the collision energy ranging from 31.0 kcal/mol to 40.0 kcal/mol, and then became essentially flat at the collision energy within 40.0\begin{document}$ - $\end{document} 55.0 kcal/mol. The product angular distributions are almost symmetric with nearly identical backward-forward double peak structure. The products OH and SO vibrational state distributions were also analyzed. 相似文献
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Ming-Taun Leu 《国际化学动力学杂志》1984,16(11):1311-1319
The termolecular rate constant for the reaction Cl + NO2 + M has been measured over the temperature range 264 to 417 K and at pressure 1 to 7 torr in a discharge flow system using atomic chlorine resonance fluorescence at 140 nm to monitor the decay of Cl in an excess of NO2. The results are\documentclass{article}\pagestyle{empty}\begin{document}$k_1^{{\rm He}} = 9.4{\rm } \times {\rm }10^{ - 31} \left({\frac{T}{{300}}} \right)^{ - 2.0 \pm 0.05} {\rm cm}^6 {\rm s}^{ - {\rm 1}}$\end{document} and \documentclass{article}\pagestyle{empty}\begin{document}$k_1^{{\rm N}2} = (14.8{\rm } \pm {\rm }1.4){\rm } \times {\rm 10}^{ - 31} {\rm cm}^6 {\rm s}^{ - 1}$\end{document} at 296 K where error limits represent one standard deviation. The systematic error of k1 measurements is estimated to be about 15%. Using a static photolysis system coupled with the FTIR spectrophotometer the branching ratio for the formation of the two possible isomers was found to be ClONO(?75%) and CINO2(?25%) in good agreement with previous measurements. 相似文献
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The kinetics of the NCCO + NO(2) reaction was studied by transient infrared laser absorption spectroscopy. The total rate constant of the reaction was measured to be k = (2.1 ± 0.1) × 10(-11) cm(3) molecule(-1) s(-1) at 298 K. Detection of products and consideration of possible secondary chemistry shows that CO(2) + NO + CN is the primary product channel. The rate constants of the NCCO + CH(4) and NCCO + C(2)H(4) reactions were also measured, obtaining upper limits of k (NCCO + CH(4)) ≤ 7.0 × 10(-14) cm(3) molecule(-1) s(-1) and k (NCCO + C(2)H(4)) ≤ 5.0 × 10(-15) cm(3) molecule(-1) s(-1). Ab initio calculations on the singlet and triplet potential energy surfaces at B3LYP/6-311++G**//CCSD(T)/6-311++G** levels of theory show that the most favorable reaction pathway occurs on the singlet surface, leading to CO(2) + NO + CN products, in agreement with experiment. 相似文献