Park Seongchul, Shin Juhyang, Yoon Hojeong, Lim Manho
Department of Chemistry and Chemistry Institute for Functional Materials, Pusan National University, Busan46241, Korea.
J Phys Chem Lett. 2022 Dec 15;13(49):11551-11557. doi: 10.1021/acs.jpclett.2c03154. Epub 2022 Dec 7.
The rotational isomerization of 1,2-disubstituted ethyl radical derivatives, reaction intermediates often found in the reaction of 1,2-disubstituted ethane derivatives, has never been measured because of their short lifetime and ultrafast rotation. However, the rotational time constant is critical for understanding the detailed reaction mechanism involving these radicals, which determine the stereoisomers of compounds produced via the intermediates. Using time-resolved infrared spectroscopy, we found that the CFBrCF radical in a CCl solution rotationally isomerizes with a time constant of 47 ± 5 ps at 280 ± 2 K. From this value and the rotational barrier heights of related compounds, CHCH and CHCHCHCH radicals in CCl were estimated to rotationally isomerize within 1 ps at 298 K, considerably faster than ethane and -butane, which rotationally isomerize with time constants of 1.8 and 81 ps, respectively. The time constant for the rotational isomerization was similar to that calculated using transition state theory with a transmission coefficient of 0.75.
1,2 - 二取代乙基自由基衍生物的旋转异构化,这种反应中间体常见于1,2 - 二取代乙烷衍生物的反应中,由于其寿命短且旋转超快,从未被测量过。然而,旋转时间常数对于理解涉及这些自由基的详细反应机理至关重要,这些自由基决定了通过中间体产生的化合物的立体异构体。使用时间分辨红外光谱,我们发现CCl溶液中的CFBrCF自由基在280 ± 2 K下以47 ± 5 ps的时间常数进行旋转异构化。根据这个值以及相关化合物的旋转势垒高度,估计CCl中的CHCH和CHCHCHCH自由基在298 K下在1 ps内进行旋转异构化,比乙烷和丁烷快得多,乙烷和丁烷的旋转异构化时间常数分别为1.8和81 ps。旋转异构化的时间常数与使用传输系数为0.75的过渡态理论计算的值相似。