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Variations in the fuel structure control the rate of the back and forth motions of a chemically fuelled molecular switch

机译:燃料结构的变化控制着化学燃料分子开关的来回运动速率

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摘要

This work deals with the use of 2-cyano-2-arylpropanoic acids as chemical fuels for an acid–base operated molecular switch that consists of a Sauvage-type catenand composed of two identical macrocycles incorporating a phenanthroline unit. When used as a base promoter of the decarboxylation of propanoic acid derivatives, the switch undergoes large amplitude motion from the neutral catenand to a protonated catenate and back again to the neutral state. The rate of back proton transfer, which determines the rate of the overall process, was markedly affected by para-substituents in the order Cl > H > CH3 > OCH3 (ρ = +5.2). Thus, the time required to complete a full cycle was almost two days for the OCH3 derivative and dropped to a few minutes for the Cl derivative. These results show for the first time that the rate of operation of a molecular switch can be regulated by variations in the fuel structure.
机译:这项工作涉及使用2-氰基-2-芳基丙酸作为酸基操作分子开关的化学燃料,该分子开关由Sauvage型链环组成,由两个相同的大环并结合有菲咯啉单元组成。当用作丙酸衍生物脱羧的碱促进剂时,该开关经历从中性链链到质子化的链状酸酯的大幅度运动,并再次回到中性状态。反质子转移的速度决定了整个过程的速度,它受到对位取代基的显着影响,顺序为Cl> H> CH3> OCH3(ρ= +5.2)。因此,对于OCH3衍生物而言,完成一个完整周期所需的时间将近两天,而对于Cl衍生物而言,该时间减少至几分钟。这些结果首次表明,可以通过燃料结构的变化来调节分子开关的工作速率。

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