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Multipole engineering of attractive-repulsive and bending optical forces

Author
Kislov, Denis A.; Gurvitz, Egor A.; Bobrovs, Vjaceslavs; Pavlov, Alexander A.; Redka, Dmitrii N.; Marqués Ponce, Manuel Ignaciountranslated; Ginzburg, Pavel; Shalin, Alexander S.
Entity
UAM. Departamento de Física de Materiales
Publisher
Wiley-VCH Verlag
Date
2021-07-16
Citation
10.1002/adpr.202100082
Advanced Photonics Research 2.9 (2021): 2100082
 
 
 
ISSN
2699-9293
DOI
10.1002/adpr.202100082
Project
Gobierno de España. CEX2018-000805-M; info:eu-repo/grantAgreement/EC/H2020/802279/ERC//In Motion
Editor's Version
https://doi.org/10.1002/adpr.202100082
Subjects
Multipole Decompositions; Optical Tweezers; Quadrupole Optical Forces; Silicon Nanoparticles; Transversal Antitrapping; Física
URI
http://hdl.handle.net/10486/704277
Rights
© 2021 The Authors

Licencia Creative Commons
Esta obra está bajo una Licencia Creative Commons Atribución 4.0 Internacional.

Abstract

Focused laser beams allow controlling the mechanical motion of objects and can serve as a tool for assembling micro and nanostructures in space. While small particles mainly experience attractive gradient forces and repulsive radiation pressure, introducing additional flexibility suggests approaching new capabilities. Herein, optical forces acting on a high refractive index sphere in a focused Gaussian beam are analyzed and new regimes are revealed. Multipolar analysis allows separating an optical force into interception and recoil components, resulting in different mechanical actions. In particular, interplaying interception radial forces and multipolar resonances within a particle can lead to either trapping or antitrapping, depending on the system parameters. At the same time, the recoil force generates a significant azimuthal component along with an angulardependent radial force. Those contributions enable enhancing either trapping or antitrapping and also introduce bending reactions. These effects are linked to the far-field multipole interference and, specifically, to asymmetric scattering patterns. The latter approach is extremely useful, as it allows assessing the nature of optomechanical motion by observing far-fields. Multipolar engineering of optical forces, being quite a general approach, is not necessarily linked to simple spherical shapes and paves a way to new possibilities in microfluidic applications, including sorting and microassembly
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Google™ Scholar:Kislov, Denis A. - Gurvitz, Egor A. - Bobrovs, Vjaceslavs - Pavlov, Alexander A. - Redka, Dmitrii N. - Marqués Ponce, Manuel Ignacio - Ginzburg, Pavel - Shalin, Alexander S.

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  • Producción científica en acceso abierto de la UAM [16646]

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All the documents from Biblos-e Archivo are protected by copyrights. Some rights reserved.
Universidad Autónoma de Madrid. Biblioteca
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