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直流电场中分子操控的最新进展。

Recent Progress in the Manipulation of Molecules with DC Electric Fields.

机构信息

Department of Chemistry, Seoul National University, 1 Gwanak-ro, Seoul 08826, South Korea.

出版信息

Acc Chem Res. 2021 Jan 19;54(2):323-331. doi: 10.1021/acs.accounts.0c00609. Epub 2020 Dec 30.

Abstract

The structure and reactivity of a molecule in the condensed phase are governed by its intermolecular interactions with the surrounding environment. The multipole expansion of each molecule in the condensed phase indicates that the intermolecular interactions are essentially electrostatic (e.g., ion-dipole, dipole-dipole, dipole-quadrupole, dipole-induced dipole). The electrostatic field is a fundamental language of intermolecular communications. Therefore, understanding the influence of the electrostatic field on a molecule, that is, the mechanisms by which an electrostatic field manipulates a molecule, from the perspective of molecular structure, energy states, and dynamics is indispensable for illustrating and, by extension, controlling the chemistry in molecular systems.In this Account, we describe the recent progress made in manipulation of molecular processes using an external DC electrostatic field. An electrostatic field with unprecedentedly high strength (≤4 × 10 V/m) was applied in a controlled manner across a molecular film sample using the ice film nanocapacitor method. This field strength is comparable in magnitude to that of weak intermolecular interactions such as van der Waals interactions in the condensed phases. The samples were prepared using a thin film growing technique in vacuum to obtain the desired chemically tailored molecular systems. The examples of prepared systems included small molecules and molecular clusters isolated in cryogenic Ar matrices, frozen molecular films in amorphous or crystalline phase, and interfaces of multilayered molecular films. The response of the molecules to the external field was monitored by reflection-absorption infrared spectroscopy. This approach allowed us to investigate a variety of molecular systems with various intermolecular strength and environments under the influence of strong electrostatic fields. The range of observed molecular behaviors includes the manipulation of molecular orientation, intramolecular dynamics, and proton transfer reactions as an example of stereodynamic control of chemical reactivity. These observations improve our understanding of molecular behaviors in strong electric fields and broaden our perspective on electrostatic manipulation of molecules. This information is also relevant to a variety of research topics in physical and biological sciences where electric fields play a role in molecular and biological functions.

摘要

在凝聚相中,分子的结构和反应性受其与周围环境的分子间相互作用的支配。凝聚相中每个分子的多极展开表明,分子间相互作用本质上是静电的(例如,离子-偶极子、偶极子-偶极子、偶极子-四极子、偶极子诱导偶极子)。静电场是分子间通信的基本语言。因此,从分子结构、能量状态和动力学的角度理解静电场对分子的影响,即静电场操纵分子的机制,对于阐明和扩展分子体系中的化学控制是必不可少的。在本综述中,我们描述了使用外部直流静电场操纵分子过程的最新进展。使用冰膜纳米电容器方法以受控方式在分子膜样品上施加具有前所未有的高强度(≤4×10V/m)的静电场。该场强与弱分子间相互作用(如凝聚相中范德华相互作用)的量级相当。使用真空中的薄膜生长技术制备样品,以获得所需的化学定制分子体系。制备的体系包括在低温 Ar 基质中隔离的小分子和分子簇、非晶或结晶相的冷冻分子膜以及多层分子膜的界面。通过反射吸收红外光谱监测分子对外部场的响应。这种方法允许我们在强静电场的影响下研究具有各种分子间强度和环境的各种分子体系。观察到的分子行为范围包括分子取向的操纵、分子内动力学以及质子转移反应,这是对化学反应性的立体动力学控制的一个例子。这些观察结果提高了我们对强电场中分子行为的理解,并拓宽了我们对分子静电操纵的认识。这些信息还与物理和生物科学中各种研究课题相关,其中电场在分子和生物功能中发挥作用。

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