首页> 外文OA文献 >Chemistry of Unique Chiral Olefins. 4. Theoretical Studies of the Racemization Mechanism of trans- and cis-1,1',2,2',3,3',4,4'-Octahydro-4,4'-biphenanthrylidenes
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Chemistry of Unique Chiral Olefins. 4. Theoretical Studies of the Racemization Mechanism of trans- and cis-1,1',2,2',3,3',4,4'-Octahydro-4,4'-biphenanthrylidenes

机译:独特的手性烯烃化学。 4.反式和顺式-1,1',2,2',3,3',4,4'-八氢-4,4'-联菲基外消旋机理的理论研究

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摘要

The minimum energy conformations and racemization barriers for the chiral sterically overcrowded helical alkenes, trans- and cis-1,1',2,2',3,3',4,4'-octahydro-4,4'-biphenanthrylidenes (1 and 2), are reported. The trans-1 and cis-2 isomers can each adapt three different conformations, (P,P) and (M,M) (an enantiomeric pair) and an achiral (P,M) meso form, of which only the chiral isomers were obtained by synthesis. The conformations and heats of formation of (M,M)-(E)-1, (P,M)-(E)-1, (M,M)-(Z)-2, and (P,M)-(Z)-2 isomers were determined by MOPAC AM1 calculations. The racemization process for both the trans- and cis- isomers is postulated to occur via the (P,M) isomers by two successive inversions of the cyclohexenyl ring; (M,M) ↔ (P,M) ↔ (P,P). The (M,M) → (P,M) and reverse (P,M) → (M,M) isomerizations were simulated by reaction path calculations, providing the molecular structure and the activation energy of the transition state for each isomerization. For each racemization process, the activation enthalpy (ΔH‡) was calculated as 23.9 and 19.9 kcal mol-1 for trans-olefin 1 and cis-olefin 2, respectively. These values reasonably agree with the experimental values obtained by temperature-dependent circular dichroism, optical rotation, and 1H NMR magnetization transfer measurements: ΔH‡ = 24.6 and 20.8 kcal mol-1 for trans-olefin 1 and cis-olefin 2, respectively. While the racemization of cis-isomer 2 is controlled by the steric interaction of H5 with C4'a and C4'b, the surprisingly high barrier for trans-olefin 1 is due to the severe steric interaction between H5 and H3'α and/or H3'β protons.
机译:手性空间过度拥挤的螺旋烯烃,反式和顺式1,1',2,2',3,3',4,4'-八氢-4,4'-双菲蒽的最小能量构象和消旋障碍和2)。反式1和顺式2异构体可分别适应三种不同的构象,(P,P)和(M,M)(对映体对)和非手性(P,M)内消旋体,其中只有手性异构体是通过合成获得。 (M,M)-(E)-1,(P,M)-(E)-1,(M,M)-(Z)-2和(P,M)-的构象和形成热通过MOPAC AM1计算确定(Z)-2异构体。假定反式和顺式异构体的外消旋过程是通过环己烯基环的两次连续反转通过(P,M)异构体发生的。 (M,M)↔(P,M)↔(P,P)。通过反应路径计算模拟了(M,M)→(P,M)和反向(P,M)→(M,M)异构化,提供了每个异构化的分子结构和过渡态的活化能。对于每个消旋过程,反式烯烃1和顺式烯烃2的活化焓(ΔH‡)分别计算为23.9和19.9 kcal mol-1。这些值与通过温度相关的圆二色性,旋光性和1H NMR磁化传递测量获得的实验值合理地吻合:反式烯烃1和顺式烯烃2的ΔH‡= 24.6和20.8 kcal mol-1。尽管顺式异构体2的外消旋作用是由H5与C4'a和C4'b的空间相互作用控制的,但反式烯烃1的令人惊讶的高阻隔是由于H5与H3'α和/或之间严重的空间相互作用H3'β质子。

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