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  Rapid computational cell-rotation around arbitrary axes in 3D with multi-core fiber

Sun, J., Koukourakis, N., Guck, J., & Czarske, J. W. (2021). Rapid computational cell-rotation around arbitrary axes in 3D with multi-core fiber. Biomedical Optics Express, 12(6), 3423-3437. doi:10.1364/BOE.423035.

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Biomed Opt Express 2021 Sun.pdf (Publisher version), 7MB
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Biomed Opt Express 2021 Sun.pdf
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© 2021 Optical Society of America under the terms of the OSA Open Access Publishing Agreement

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 Creators:
Sun, Jiawei1, Author
Koukourakis, Nektarios1, Author
Guck, Jochen2, 3, Author           
Czarske, Jürgen W.1, Author
Affiliations:
1Technische Universität Dresden, ou_persistent22              
2Guck Division, Max Planck Institute for the Science of Light, Max Planck Society, ou_3164416              
3Max-Planck-Zentrum für Physik und Medizin, Max Planck Institute for the Science of Light, Max Planck Society, ou_3164414              

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 Abstract: Optical trapping is a vital tool in biology, allowing precise optical manipulation of nanoparticles, micro-robots, and cells. Due to the low risk of photodamage and high trap stiffness, fiber-based dual-beam traps are widely used for optical manipulation of large cells. Besides trapping, advanced applications like 3D refractive index tomography need a rotation of cells, which requires precise control of the forces, for example, the acting-point of the forces and the intensities in the region of interest (ROI). A precise rotation of large cells in 3D about arbitrary axes has not been reported yet in dual-beam traps. We introduce a novel dual-beam optical trap in which a multi-core fiber (MCF) is transformed to a phased array, using wavefront shaping and computationally programmable light. The light-field distribution in the trapping region is holographically controlled within 0.1 s, which determines the orientation and the rotation axis of the cell with small retardation. We demonstrate real-time controlled rotation of HL60 cells about all 3D axes with a very high degree of freedom by holographic controlled light through an MCF with a resolution close to the diffraction limit. For the first time, the orientation of the cell can be precisely controlled about all 3D axes in a dual-beam trap. MCFs provide much higher flexibility beyond the bulky optics, enabling lab-on-a-chip applications and can be easily integrated for applications like contactless cell surgery, refractive index tomography, cell-elasticity measurement, which require precise 3D manipulation of cells.

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Language(s): eng - English
 Dates: 2021-05-102021-05-17
 Publication Status: Published online
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 Identifiers: DOI: 10.1364/BOE.423035
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Title: Biomedical Optics Express
  Abbreviation : Biomed Opt Express
Source Genre: Journal
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Publ. Info: Washington, DC : Optical Society of America (OSA)
Pages: - Volume / Issue: 12 (6) Sequence Number: - Start / End Page: 3423 - 3437 Identifier: CoNE: https://pure.mpg.de/cone/journals/resource/2156-7085