Plasmon-Based Optical Trapping of Polymer Nano-Spheres as Explored by Confocal Fluorescence Microspectroscopy: A Possible Mechanism of a Resonant Excitation Effect
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概要
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In optical trapping using photon force much enhanced by localized surface plasmon (LSP) in solution, we found that a resonant excitation effect can further enhance photon force. In this LSP-based optical trapping under a resonant excitation condition, an incident laser beam excites both LSP and electronic resonant transition of a target object simultaneously. Fluorescence microspectroscopy clearly showed that nanospheres under the resonant condition were much more efficiently trapped as compared to that under a non-resonant condition. The resonant LSP-based trapping mechanism was further reinforced by theoretical calculations taking the resonant excitation effect into account. Such resonant LSP-based trapping methodology will provide a novel approach for efficient trapping of small molecules.
- 2012-09-25
著者
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Tsuboi Yasuyuki
Division Of Chemistry Graduate School Of Science Hokkaido University
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Mizumoto Yoshihiko
Department Of Nuclear Reactor Engineering Faculty Of Science And Technology Kinki University
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Murakoshi Kei
Division Of Chemistry Graduate School Of Engineering Science Osaka University
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Kitamura Noboru
Division Of Chemistry Graduate Of Science Hokkaido University
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Shoji Tatsuya
Division Of Chemistry Graduate School Of Science Hokkaido University
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Ishihara Hajime
Department Of Biochemistry Tohoku University School Of Medicine
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Mizumoto Yoshihiko
Department of Physics and Electronics, Osaka Prefecture University, Sakai 599-8531, Japan
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Takase Mai
Division of Chemistry, Graduate School of Science, Hokkaido University, Sapporo 060-0810, Japan
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Ishihara Hajime
Department of Physics and Electronics, Osaka Prefecture University, Sakai 599-8531, Japan
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Shoji Tatsuya
Division of Chemistry, Graduate School of Science, Hokkaido University, Sapporo 060-0810, Japan
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Murakoshi Kei
Division of Chemistry, Graduate School of Science, Hokkaido University, Sapporo 060-0810, Japan
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MIZUMOTO Yoshihiko
Department of Nuclear Engineering, Institute of Atomic Energy, Kinki University
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