Unravelling 3D Dynamics and Hydrodynamics during Incorporation of Dielectric Particles to an Optical Trapping Site

Mapping of the spatial and temporal motion of particles inside an optical field is critical for understanding and further improvement of the 3D spatio-temporal control over their optical trapping dynamics. However, it is not trivial to capture the 3D motion, and most imaging systems only capture a 2...

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Detalles Bibliográficos
Autores: Louis, Boris, Huang, Chih-Hao, Camacho, Rafael, Scheblykin, Ivan, Sugiyama, Teruki, Kudo, Tetsuhiro, Melendez, Marc, Delgado-Buscalioni, Rafael, Masuhara, Hiroshi, Hofkens, Johan, Bresolí Obach, Roger
Tipo de recurso: artículo
Fecha de publicación:2023
País:España
Institución:Varias* (Consorci de Biblioteques Universitáries de Catalunya, Centre de Serveis Científics i Acadèmics de Catalunya)
Repositorio:Recercat. Dipósit de la Recerca de Catalunya
OAI Identifier:oai:recercat.cat:20.500.14342/4708
Acceso en línea:http://hdl.handle.net/20.500.14342/4708
https://doi.org/10.1021/acsnano.2c11753
Access Level:acceso abierto
Palabra clave:Hydrodynamics
Optical field
Particle tracking
3D imaging
Òptica--Aparells i instruments
Optical instruments
535
Descripción
Sumario:Mapping of the spatial and temporal motion of particles inside an optical field is critical for understanding and further improvement of the 3D spatio-temporal control over their optical trapping dynamics. However, it is not trivial to capture the 3D motion, and most imaging systems only capture a 2D projection of the 3D motion, in which the information about the axial movement is not directly available. In this work, we resolve the 3D incorporation trajectories of 200 nm fluorescent polystyrene particles in an optical trapping site under different optical experimental conditions using a recently developed widefield multiplane microscope (imaging volume of 50 × 50 × 4 μm3). The particles are gathered at the focus following some preferential 3D channels that show a shallow cone distribution. We demonstrate that the radial and the axial flow speed components depend on the axial distance from the focus, which is directly related to the scattering/gradient optical forces. While particle velocities and trajectories are mainly determined by the trapping laser profile, they cannot be completely explained without considering collective effects resulting from hydrodynamic forces.