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Rate coefficients for cycloalkyl + O reactions and product branching in the decomposition of chemically activated cycloalkoxy radicals:an experimental and theoretical study

机译:基础烷基+ O反应和产物分支在化学活化环烷氧基自由基分解中的速率系数:实验与理论研究

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The kinetics of cycloalkyl + O reactions were studied with respect to their rate coefficients and the product branching ratios from the decomposition of the chemically activated cycloalkoxy radicals. Rate coefficients for the reactions of cyclohexyl (c-C6H_(11)), cycloheptyl (c-C7H_(13)) and cyclooctyl (c-CsH_(15)) radicals with oxygen atoms were determined with an experimental setup consisting of a discharge flow reactor with molecular beam sampling and REMPI/TOF-MS detection. The following rate coefficients were obtained (units: cm~3/mol~(-1) s~(-1)): k(c-C6H_(11) + O) = (1.33 ± 0.24) × 10~(14)(T/298 K)~(0.11) (T = 250-600 K), k(c-C7H_(13) + O) = (1.85 ± 0.25) × 10~(14) (T = 298 K), k(c-C8H_(15) + O) = (1.56 ± 0.20) × 10~(14)(77298 K)~(0.66±0.15) (T = 268-363 K). Stable products were determined by quantitative FTIR spectroscopy. The decomposition of the cycloalkoxy radicals leads besides β-C-H bond fission (yields: 24% for c-C6H_(11)O, 20-25% for c-C8H_(15)O) mainly to alkyl radicals by ring-opening via β-C-C bond cleavage. These open-chain alkyl radicals further decompose mainly by P-C-C bond scission. An increase of the total pressure from 4 mbar to 1 bar had no effect on the product distribution for the reaction c-C6H_(11) + O, whereas for the reaction c-C8H_(15) + O further decomposition of the ring-opening product is significantly suppressed at 1 bar. The experimental results on the channel branching and its pressure dependence were rationalized with the statistical rate theory. A comparison of the experimental and modeling results indicates a significant influence of hindered internal rotations (HIRs) on the reactions of the ring-opening products. The harmonic approximation to describe these modes was shown to be inadequate, while a treatment as one-dimensional HIRs led to a significantly improved agreement between experimental and modeling results. Implications of our findings for the formation of secondary organic aerosol and high-temperature combustion are discussed.
机译:研究了环烷基+ O反应的动力学,相对于它们的速率系数和产品分支比从化学活化的环烷氧基自由基分解中研究。用由排出流量组成的实验装置确定与氧原子的环己基(C-C6H_(11)),环庚基(C-C7H_(13))和环辛基(C-CSH_(15))的反应的速率系数。具有分子束采样和REMPI / TOF-MS检测的反应器。获得以下速率系数(单位:Cm〜3 / mol〜(-1)S〜(-1)):K(C-C6H_(11)+ O)=(1.33±0.24)×10〜(14) (T / 298 K)〜(0.11)(T = 250-600 k),K(C-C7H_(13)+ O)=(1.85±0.25)×10〜(14)(T = 298 k),K (C-C8H_(15)+ O)=(1.56±0.20)×10〜(14)(77298 k)〜(0.66±0.15)(t = 268-363 k)。通过定量的FTIR光谱法测定稳定的产物。除了β-CH键裂解之外,环烷氧基基团的分解引线(对于C-C6H_(11)O,C-C8H_(15)o)的24%,主要通过β通过β通过开环烷基为烷基。 -CC键切割。这些开放式烷基自由基主要通过P-C-C粘合群体进行分解。从4毫巴到1巴的总压力的增加对反应C-C6H_(11)+ O的产物分布没有影响,而对于反应C-C8H_(15)+ O进一步分解环开口产品在1巴中受到显着抑制。渠道支化的实验结果及其压力依赖性与统计税率理论合理化。实验和建模结果的比较表明阻碍内部旋转(HIRS)对开环产品反应的显着影响。谐波近似来描述这些模式被证明是不充分的,而作为一维HIRS导致实验和模拟结果之间的显著改进的协议的处理。讨论了我们对次级有机气溶胶形成和高温燃烧形成的影响。

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    Institut fur Physikalische Chemie Georg-August-Universitat Tammanstr. 6 37077 Gottingen Germany.;

    Institut fur Physikalische Chemie Georg-August-Universitat Tammanstr. 6 37077 Gottingen Germany.;

    Institut fur Physikalische Chemie Georg-August-Universitat Tammanstr. 6 37077 Gottingen Germany.;

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