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Towards Redox-Driven Unidirectional Molecular Motion

机译:走向氧化还原驱动的单向分子运动

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摘要

Redox-driven molecular motion is an attractive alternative to light-driven processes. Here, the ability of an overcrowded alkene-based unimolecular light-driven rotary motor (A) to be driven by oxidation/reduction cycles is explored. We show that two-electron oxidation of A is followed by irreversible deprotonation and reduction to form a monocationic species D+, in which the stereogenic center is lost. This latter species was isolated through preparative electrolysis and its structure was confirmed by using single-crystal X-ray analysis. However, at short timescales and in the absence of Bronsted acids, these processes can be outrun and the oxidation of A to a dicationic species B2+ occurs, in which the central double bond (the axle of the molecular motor) becomes a single bond; when followed by rapid reduction, it results in the reformation of A, potentially in both its stable and unstable conformations. The latter conformation, if formed, undergoes thermal helix inversion, completing a rotary cycle. The data obtained regarding these reactions provide a window of opportunity for the motor to be driven electrochemically, without degradation from chemical reactions of the oxidized motor.
机译:氧化还原驱动的分子运动是光驱动过程的一种有吸引力的替代方法。在此,研究了过度拥挤的基于烯烃的单分子光驱动旋转电动机(A)被氧化/还原循环驱动的能力。我们表明,A的两电子氧化之后是不可逆的去质子化和还原,形成单阳离子物种D +,其中失去了立体中心。通过制备性电解分离后一种物质,并通过单晶X射线分析证实其结构。但是,在较短的时间范围内并且在不存在布朗斯台德酸的情况下,这些过程可能会超出范围,并且会发生A氧化为特殊物种B2 +的情况,其中中心双键(分子马达的轴)变为单键;当快速还原后,它会导致A的重新形成,并可能同时导致其稳定和不稳定构象。后者的构象,如果形成,则经历热螺旋反转,完成旋转循环。关于这些反应获得的数据为电动机被电化学驱动提供了机会,而不会因氧化电动机的化学反应而降解。

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