Kudo Tetsuhiro, Louis Boris, Sotome Hikaru, Chen Jui-Kai, Ito Syoji, Miyasaka Hiroshi, Masuhara Hiroshi, Hofkens Johan, Bresolí-Obach Roger
Laser Science Laboratory, Toyota Technological Institute Hisakata, Tempaku-ku Nagoya 468-8511 Japan
Laboratory for Photochemistry and Spectroscopy, Division for Molecular Imaging and Photonics, Department of Chemistry, Katholieke Universiteit Leuven Belgium
Chem Sci. 2023 Aug 22;14(37):10087-10095. doi: 10.1039/d3sc01927f. eCollection 2023 Sep 27.
The resonance between an electronic transition of a micro/nanoscale object and an incident photon flux can modify the radiation force exerted on that object, especially at an interface. It has been theoretically proposed that a non-linear stimulated emission process can also induce an optical force, however its direction will be opposite to conventional photon scattering/absorption processes. In this work, we experimentally and theoretically demonstrate that a stimulated emission process can induce a repulsive pulling optical force on a single trapped dye-doped particle. Moreover, we successfully integrate both attractive pushing (excited state absorption) and repulsive pulling (stimulated emission) resonance forces to control the overall exerted optical force on an object, validating the proposed non-linear optical resonance theory. Indeed, the results presented here will enable the optical manipulation of the exerted optical force with exquisite control and ultimately enable single particle manipulation.
微纳尺度物体的电子跃迁与入射光子通量之间的共振能够改变施加在该物体上的辐射力,特别是在界面处。理论上已提出非线性受激辐射过程也可诱导光学力,然而其方向将与传统的光子散射/吸收过程相反。在这项工作中,我们通过实验和理论证明受激辐射过程可在单个捕获的染料掺杂粒子上诱导出排斥性的拉力光学力。此外,我们成功整合了吸引性的推力(激发态吸收)和排斥性的拉力(受激辐射)共振力,以控制施加在物体上的总光学力,验证了所提出的非线性光学共振理论。实际上,这里展示的结果将实现对施加光学力的精确控制的光学操纵,并最终实现单粒子操纵。