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基于可逆恶唑嗪形成的化学驱动旋转分子马达。

A Chemically Powered Rotary Molecular Motor Based on Reversible Oxazepine Formation.

作者信息

Han Tian-Jiao, Ke Xin-Yan, Wang Min-Can, Ni Shao-Fei, Mei Guang-Jian

机构信息

College of Chemistry, Zhengzhou University, Zhengzhou, 450001, China.

Department of Chemistry, Key Laboratory for Preparation and Application of Ordered Structural Materials of Guang-dong Province, Shantou University, Shantou, 515063, China.

出版信息

Angew Chem Int Ed Engl. 2025 Jan 27;64(5):e202418933. doi: 10.1002/anie.202418933. Epub 2024 Dec 4.

Abstract

While biological machines are powered mainly by chemical transformations, chemically driven artificial rotary motor systems are very limited. Here, we report an aniline-phenol-based rotary molecular motor that operates via an information ratchet mechanism. The 360° directional rotation about a single covalent bond can be chemically driven by reversible oxazepine formation. Both the oxazepine formation and hydrolysis steps are kinetically gated via dynamic kinetic resolution, arising from the kinetic bias of chiral catalysts for enantiomers. Given the 95 % ee (97.5 : 2.5) and 88 % ee (94 : 6) of the individual gating steps of motor analogues, the overall directionality ratio could be calculated to be 91.7 : 8.3 (97.5 %×94 %≈91.7 %), which means that the motor will make one mistake (backward rotation) approximately every 11 to 12 turns.

摘要

虽然生物机器主要由化学转化提供动力,但化学驱动的人工旋转马达系统却非常有限。在此,我们报道了一种基于苯胺 - 苯酚的旋转分子马达,其通过信息棘轮机制运行。围绕单个共价键的360°定向旋转可由可逆的恶唑嗪形成进行化学驱动。恶唑嗪的形成和水解步骤均通过动态动力学拆分在动力学上受到控制,这源于手性催化剂对映体的动力学偏向。鉴于马达类似物各个控制步骤的对映体过量分别为95% ee(97.5∶2.5)和88% ee(94∶6),整体方向性比率经计算为91.7∶8.3(97.5%×94%≈91.7%),这意味着该马达大约每11至12转就会出现一次错误(反向旋转)。

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