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关于非共振激光束中分子间的相互作用:评估对能量迁移和光致配对力的响应。

On the interactions between molecules in an off-resonant laser beam: Evaluating the response to energy migration and optically induced pair forces.

作者信息

Andrews David L, Leeder Jamie M

机构信息

Nanostructures and Photomolecular Systems, School of Chemical Sciences, University of East Anglia, Norwich NR4 7TJ, United Kingdom.

出版信息

J Chem Phys. 2009 Jan 21;130(3):034504. doi: 10.1063/1.3062872.

DOI:10.1063/1.3062872
PMID:19173528
Abstract

Electronically excited molecules interact with their neighbors differently from their ground-state counterparts. Any migration of the excitation between molecules can modify intermolecular forces, reflecting changes to a local potential energy landscape. It emerges that throughput off-resonant radiation can also produce significant additional effects. The context for the present analysis of the mechanisms is a range of chemical and physical processes that fundamentally depend on intermolecular interactions resulting from second and fourth-order electric-dipole couplings. The most familiar are static dipole-dipole interactions, resonance energy transfer (both second-order interactions), and dispersion forces (fourth order). For neighboring molecules subjected to off-resonant light, additional forms of intermolecular interaction arise in the fourth order, including radiation-induced energy transfer and optical binding. Here, in a quantum electrodynamical formulation, these phenomena are cast in a unified description that establishes their inter-relationship and connectivity at a fundamental level. Theory is then developed for systems in which the interplay of these forms of interaction can be readily identified and analyzed in terms of dynamical behavior. The results are potentially significant in Forster measurements of conformational change and in the operation of microelectromechanical and nanoelectromechanical devices.

摘要

电子激发态分子与其基态对应物与相邻分子的相互作用方式不同。分子间激发的任何迁移都可以改变分子间作用力,反映出局部势能景观的变化。结果表明,非共振辐射的通量也会产生显著的附加效应。本机制分析的背景是一系列化学和物理过程,这些过程从根本上依赖于由二阶和四阶电偶极耦合产生的分子间相互作用。最常见的是静态偶极 - 偶极相互作用、共振能量转移(均为二阶相互作用)和色散力(四阶)。对于受到非共振光作用的相邻分子,在四阶会出现分子间相互作用的其他形式,包括辐射诱导的能量转移和光束缚。在此,在量子电动力学公式中,这些现象被进行统一描述,从而在基本层面上确立它们的相互关系和连通性。然后针对这样的系统展开理论研究,在该系统中,这些相互作用形式的相互作用能够依据动力学行为轻易地被识别和分析。这些结果在构象变化的福斯特测量以及微机电和纳米机电装置的运行中可能具有重要意义。

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