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基于非线性光学响应的纳米物体的共振光操控。

Resonance optical manipulation of nano-objects based on nonlinear optical response.

机构信息

Department of Physics and Electronics, Osaka Prefecture University, 1-1 Gakuencho, Nakaku, Sakai, Osaka 599-8531, Japan.

出版信息

Phys Chem Chem Phys. 2013 Sep 21;15(35):14595-610. doi: 10.1039/c3cp51969d.

Abstract

Optical manipulation is a technique to control the mechanical motion of small objects by using electromagnetic radiation force. Optical tweezers are the most popular tool to trap and move microparticles suspended in a medium. Recent interest has been shifting to manipulating nano-objects considerably smaller than the wavelength of light. Since the radiation force exerted on nano-objects is extremely small, an innovative method is necessary to make this concept feasible. Utilizing the resonant optical response of the objects to electronic transitions is one of the promising ways to approach nanoscale optical manipulation, and several advances in this direction have been made recently. Despite experimental studies on resonance optical tweezers showing favorable results, conventional theories have been unable to explain the results though demonstrations of resonant manipulations for traveling and standing waves have shown favorable results. In the present article, we provide a perspective view of resonance optical manipulation based on nonlinear optical response that we have recently proposed. This idea coherently elucidates recently reported puzzling phenomena appearing in studies concerning resonance optical tweezers that contradict the conventional understanding of resonance optical trapping. Further, this concept opens up the possibility to develop potentially powerful manipulation techniques because the nonlinear optical response involves processes with considerably greater degrees of freedom than those of the linear optical response. As examples, we propose a method for trapping single organic molecules that is more effective than ever before, selectively pulling the molecules with a particular transition energy, and our proposed method allows for high-spatial-resolution optical manipulation beyond the diffraction limit.

摘要

光镊是一种通过电磁辐射力控制微小物体机械运动的技术。光镊是捕获和移动悬浮在介质中的微粒子的最流行工具。最近,人们的兴趣已经转移到操纵比光波长小得多的纳米物体上。由于作用在纳米物体上的辐射力非常小,因此需要一种创新的方法来使这个概念可行。利用物体对电子跃迁的共振光学响应是接近纳米光学操纵的一种很有前途的方法,最近在这方面取得了一些进展。尽管关于共振光镊的实验研究显示出了有利的结果,但传统理论无法解释这些结果,尽管对行波和驻波的共振操纵的演示显示出了有利的结果。在本文中,我们根据我们最近提出的非线性光学响应提供了一种关于共振光学操纵的透视观点。这个想法一致地阐明了最近在关于共振光镊的研究中出现的与共振光捕获的传统理解相矛盾的令人困惑的现象。此外,这个概念为开发潜在的强大操纵技术提供了可能性,因为非线性光学响应涉及比线性光学响应自由度大得多的过程。例如,我们提出了一种比以往任何时候都更有效的捕获单个有机分子的方法,可以选择性地拉取具有特定跃迁能量的分子,并且我们提出的方法允许超越衍射极限的高空间分辨率光学操纵。

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