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Tunneling by 16 Carbons: Planar Bond Shifting in [16]Annulene

机译:隧道由16个碳:平面粘接移位[16] annulene

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摘要

Midsized annulenes are known to undergo rapid pi-bond shifting. Given that heavy-atom tunneling plays a role in planar bond shifting of cyclobutadiene, we computationally explored the contribution of heavy-atom tunneling to planar pi-bond shifting in the major (CTCTCTCT, 5a) and minor (CTCTTCTT, 6a) known isomers of [16]annulene. UM06-2X/cc-pVDZ calculations yield bond-shifting barriers of ca. 10 kcal/ mol. The results also reveal extremely narrow barrier widths, H a suggesting a high probability of tunneling for these bond-shifting reactions. Rate constants were calculated using canonical variational transition state theory (CVT) as well as with small curvature tunneling (SCT) contributions, via direct dynamics. For the major isomer 5a, the computed SCT rate constant for bond shifting at 80 K is 0.16 s(-1), corresponding to a half-life of 4.3 s, and indicating that bond shifting is rapid at cryogenic temperatures despite a 10 kcal/mol barrier. This contrasts with the CVT rate constant of 8.0 x 10(-15) s(-1) at 80 K. The minor isomer 6a is predicted to undergo rapid bond shifting via tunneling even at 10 K. For both isomers, bond shifting is predicted to be much faster than competing conformation change despite lower barriers for the latter process. The preference for bond shifting represents cases of tunneling control in which the preferred reaction is dominated by heavy-atom motions. At all temperatures below -50 degrees C, tunneling is predicted to dominate the bond shifting process for both 5a and 6a. Thus, [16]annulene is predicted to be an example of tunneling by 16 carbons. Bond shifting in both isomers is predicted to be rapid at temperatures accessible by solution-phase NMR spectroscopy, and an experiment is proposed to verify these predictions.
机译:已知中型倒置是经历快速的pi-键转移。考虑到重型原子隧道在平面债券转移中起作用的环论,我们在计算上探索了重型原子隧穿在主要(CTCTCTCT,5A)和轻微(CTCTTCTT,6A)已知异构体中的平面pi-键转移的贡献[16]含环。 UM06-2X / CC-PVDZ计算产生CA的粘接屏障。 10 kcal / mol。结果还揭示了极窄的屏障宽度,H A表明这些粘接反应的隧道隧道的高概率。利用规范变分过渡状态理论(CVT)以及通过直接动力学来计算速率常数和小曲率隧道(SCT)贡献。对于主要的异构体5a,在80k下粘接的计算的SCT速率常数为0.16 s(-1),对应于4.3s的半衰期,并且表明粘合在低温温度下尽管10 kcal /摩尔障碍。这与8.0×10(-15)S(-1)的CVT速率常数在80k处形成对比。较小的异构体6a也预测,即使在10K上也可以通过隧道换档换档。对于两种异构体,预测键转移尽管后一篇过程的障碍较低,但仍比竞争符合变化更快。粘合转移的偏好表示隧道控制的病例,其中优选的反应由重原子运动主导。在低于-50℃的所有温度下,预测隧道占据5A和6A的粘接过程。因此,预测亚u烯烃是由16个碳的隧穿的示例。预计两种异构体中的粘接在溶液相NMR光谱可获得的温度下迅速快速,并且提出了一种实验来验证这些预测。

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  • 来源
    《Journal of the American Chemical Society》 |2019年第13期|5286-5293|共8页
  • 作者单位

    Univ San Francisco Dept Chem 2130 Fulton St San Francisco CA 94117 USA;

    Univ San Francisco Dept Chem 2130 Fulton St San Francisco CA 94117 USA;

    Univ San Francisco Dept Chem 2130 Fulton St San Francisco CA 94117 USA;

    Univ San Francisco Dept Chem 2130 Fulton St San Francisco CA 94117 USA;

    Univ San Francisco Dept Chem 2130 Fulton St San Francisco CA 94117 USA;

    Univ San Francisco Dept Chem 2130 Fulton St San Francisco CA 94117 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 22:16:36

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