Departments of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
J Phys Chem A. 2009 Nov 26;113(47):13357-71. doi: 10.1021/jp9042039.
This work reports experimental and theoretical first-order rate constants for the reaction of vinyl radical with C(4)H(8) alkenes: 1-butene, 2-butene, and isobutene. The experiments are performed over a temperature range of 300 to 700 K at 100 Torr. Vinyl radicals (H(2)C horizontal lineCH) were generated by laser photolysis of vinyl iodide (C(2)H(3)I) at 266 nm, and time-resolved absorption spectroscopy was used to probe vinyl radicals at 423.2 and 475 nm. Weighted Arrhenius fits to the experimental rate coefficients for 1-butene (k(1)), 2-butene (k(2)), and isobutene (k(3)) yield k(1) = (1.3 +/- 0.3) x 10(-12) cm(3) molecules(-1) s(-1) exp[-(2200 +/- 120) K/T]; k(2) = (1.7 +/- 0.3) x 10(-12) cm(3) molecules(-1) s(-1) exp[-(2610 +/- 120) K/T]; and k(3) = (1.0 +/- 0.1) x 10(-12) cm(3) molecules(-1) s(-1) exp[-(2130 +/- 50) K/T], respectively. C(6)H(11) potential energy surfaces (PESs) for each system were calculated using the G3 method. RRKM/ME simulations were performed for each system to predict pressure-dependent rate coefficients and branching fractions for the major channels. A generic rate rule for vinyl addition to various alkenes is recommended; a similar rate rule for the abstraction of H atoms by vinyl from alkenes is also provided. Some of the vinyl addition reactions exhibit anomalous Evans-Polanyi plots similar to those reported for previous methyl addition reactions.
这项工作报道了乙烯基自由基与 C(4)H(8)烯烃反应的实验和理论一级速率常数:1-丁烯、2-丁烯和异丁烯。实验在 100 托下于 300 至 700 K 的温度范围内进行。乙烯基自由基(H(2)C 水平CH)通过 266nm 的乙烯基碘(C(2)H(3)I)的激光光解产生,并用时间分辨吸收光谱在 423.2 和 475nm 处探测乙烯基自由基。对 1-丁烯(k(1))、2-丁烯(k(2))和异丁烯(k(3))的实验速率系数进行加权 Arrhenius 拟合,得到 k(1) = (1.3 +/- 0.3) x 10(-12) cm(3) molecules(-1) s(-1) exp[-(2200 +/- 120) K/T];k(2) = (1.7 +/- 0.3) x 10(-12) cm(3) molecules(-1) s(-1) exp[-(2610 +/- 120) K/T];k(3) = (1.0 +/- 0.1) x 10(-12) cm(3) molecules(-1) s(-1) exp[-(2130 +/- 50) K/T]。使用 G3 方法计算了每个体系的 C(6)H(11)势能面(PES)。对每个体系进行 RRKM/ME 模拟,以预测主要通道的压力依赖性速率系数和分支比。建议了一个用于各种烯烃的乙烯基加成的通用速率规则;还提供了一个用于乙烯基从烯烃中提取 H 原子的类似速率规则。一些乙烯基加成反应表现出异常的 Evans-Polanyi 图,类似于以前报道的甲基加成反应。