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通过受限空间实现单分子反应的精确测量和操控。

Toward Precision Measurement and Manipulation of Single-Molecule Reactions by a Confined Space.

机构信息

School of Chemistry and Molecular Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai, 200237, China.

School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, 210023, China.

出版信息

Small. 2019 May;15(19):e1805426. doi: 10.1002/smll.201805426. Epub 2019 Mar 29.

Abstract

All chemical reactions can be divided into a series of single molecule reactions (SMRs), the elementary steps that involve only isomerization of, dissociation from, and addition to an individual molecule. Analyzing SMRs is of paramount importance to identify the intrinsic molecular mechanism of a complex chemical reaction, which is otherwise implausible to reveal in an ensemble fashion, owing to the significant static and dynamic heterogeneity of real-world chemical systems. The single-molecule measurement and manipulation methods developed recently are playing an increasingly irreplaceable role to detect and recognize short-lived intermediates, visualize their transient existence, and determinate the kinetics and dynamics of single bond breaking and formation. Notably, none of the above SMRs characterizations can be realized without the aid of a confined space. Therefore, this Review aims to highlight the recent progress in the development of confined space enabled single-molecule sensing, imaging, and tuning methods to study chemical reactions. Future prospects of SMRs research are also included, including a push toward the physical limit on transduction of information to signals and vice versa, transmission and recording of signals, computational modeling and simulation, and rational design of a confined space for precise SMRs.

摘要

所有的化学反应都可以分为一系列的单分子反应(SMRs),这些基本步骤只涉及单个分子的异构化、离解和加成。分析 SMR 对于确定复杂化学反应的内在分子机制至关重要,否则由于实际化学系统的显著静态和动态异质性,以整体方式揭示这一机制是不切实际的。最近开发的单分子测量和操纵方法在检测和识别短寿命中间体、可视化它们的瞬态存在以及确定单键断裂和形成的动力学和动态方面发挥着越来越不可替代的作用。值得注意的是,如果没有受限空间的帮助,上述任何 SMR 特征都无法实现。因此,本综述旨在强调开发受限空间的单分子传感、成像和调谐方法以研究化学反应的最新进展。还包括对 SMR 研究的未来展望,包括朝着信息转换为信号和反之亦然的物理极限、信号的传输和记录、计算建模和模拟以及受限空间的合理设计以实现精确的 SMR 等方面的推动。

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