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首页> 外文期刊>Chemistry: A European journal >Reversible photoswitching of rotaxane character and interplay of thermodynamic stability and kinetic lability in a self-assembling ring-axle molecular system
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Reversible photoswitching of rotaxane character and interplay of thermodynamic stability and kinetic lability in a self-assembling ring-axle molecular system

机译:自组装环-轴分子系统中轮烷特性的可逆光开关以及热力学稳定性和动力学不稳定性的相互作用

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摘要

We have designed, synthesized, and investigated a self-assembling system that can be reversibly interconverted between thermodynamically stable (pseudorotaxane) and kinetically inert (rotaxane) forms by light irradiation. The system is composed of a dibenzo[24]crown-8 ring and an axle comprised of a dibenzylammonium recognition site and two azobenzene end groups. The isomeric form of the azobenzene units of the axle has a little influence on the stability constants of the respective pseudorotaxanes but greatly affects the threading-dethreading rate constants. In fact, equilibration of the ring and the axle in its EE isomeric form occurs within seconds in acetonitrile at room temperature, whereas the ZZ axle threads-dethreads the ring at least four orders of magnitude slower. Moreover, we show that a change in the stability of the complex, achieved by deprotonating the dibenzylammonium recognition site on the axle, affects its kinetic behavior. We compare the results of these experiments with those observed upon dethreading the (pseudo) rotaxane by using a competitive guest for the ring, an approach which does not inherently destabilize the ring-axle interaction. This study outlines a general strategy for the reversible photochemical control of motion kinetics in threaded and interlocked compounds and constitutes a starting point for the construction of multicomponent structures that can behave as photochemically driven nanomachines.
机译:我们已经设计,合成和研究了一种自组装系统,该系统可以通过光照射在热力学稳定(伪轮烷)形式和动力学惰性(轮烷)形式之间可逆地相互转换。该系统由二苯并[24]冠-8环和由二苄基铵识别位点和两个偶氮苯端基组成的轴组成。车轴上偶氮苯单元的异构形式对各个假轮烷的稳定性常数影响很小,但对穿线-脱线速率常数影响很大。实际上,环和其EE异构体形式的轴的平衡在室温下于乙腈中在数秒之内发生,而ZZ轴对环的脱螺纹速度至少慢了四个数量级。此外,我们表明通过使轴上的二苄基铵识别位去质子化而实现的配合物稳定性的变化会影响其动力学行为。我们将这些实验的结果与通过使用有竞争性的客体对环进行(伪)轮烷脱线时观察到的结果进行比较,这种方法不会固有地破坏环-轴相互作用。这项研究概述了可逆光化学控制螺纹和互锁化合物运动动力学的一般策略,并为构建可充当光化学驱动纳米机械的多组分结构提供了起点。

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