Cargando…

Digital holographic methods: low coherent microscopy and optical trapping in nano-optics and biomedical metrology

This book presents not only the simultaneous combination of optical methods based on holographic principles for marker-free imaging, real-time trapping, identification and tracking of micro objects, but also the application of substantial low coherent light sources and non-diffractive beams. It firs...

Descripción completa

Detalles Bibliográficos
Autor principal: Stuerwald, Stephan
Lenguaje:eng
Publicado: Springer 2018
Materias:
Acceso en línea:https://dx.doi.org/10.1007/978-3-030-00169-8
http://cds.cern.ch/record/2646969
_version_ 1780960526029815808
author Stuerwald, Stephan
author_facet Stuerwald, Stephan
author_sort Stuerwald, Stephan
collection CERN
description This book presents not only the simultaneous combination of optical methods based on holographic principles for marker-free imaging, real-time trapping, identification and tracking of micro objects, but also the application of substantial low coherent light sources and non-diffractive beams. It first provides an overview of digital holographic microscopy (DHM) and holographic optical tweezers as well as non-diffracting beam types for minimal-invasive, real-time and marker-free imaging as well as manipulation of micro and nano objects. It then investigates the design concepts for the optical layout of holographic optical tweezers (HOTs) and their optimization using optical simulations and experimental methods. In a further part, the book characterizes the corresponding system modules that allow the addition of HOTs to commercial microscopes with regard to stability and diffraction efficiency. Further, based on experiments and microfluidic applications, it demonstrates the functionality of the combined setup, and discusses several types of non-diffracting beams and their application in optical manipulation. The book shows that holographic optical tweezers, including several non-diffracting beam types like Mathieu beams, combined parabolic and Airy beams, not only open up the possibility of generating efficient multiple dynamic traps for micro and nano particles with forces in the pico and nano newton range, but also the opportunity to exert optical torque with special beams like Bessel beams, which can facilitate the movement and rotation of particles by generating microfluidic flows. The last part discusses the potential use of a slightly modified DHM-HOT-system to explore the functionality of direct laser writing based on a two photon absorption process in a negative photoresist with a continuous wave laser.
id cern-2646969
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2018
publisher Springer
record_format invenio
spelling cern-26469692021-04-21T18:40:51Zdoi:10.1007/978-3-030-00169-8http://cds.cern.ch/record/2646969engStuerwald, StephanDigital holographic methods: low coherent microscopy and optical trapping in nano-optics and biomedical metrologyOther Fields of PhysicsThis book presents not only the simultaneous combination of optical methods based on holographic principles for marker-free imaging, real-time trapping, identification and tracking of micro objects, but also the application of substantial low coherent light sources and non-diffractive beams. It first provides an overview of digital holographic microscopy (DHM) and holographic optical tweezers as well as non-diffracting beam types for minimal-invasive, real-time and marker-free imaging as well as manipulation of micro and nano objects. It then investigates the design concepts for the optical layout of holographic optical tweezers (HOTs) and their optimization using optical simulations and experimental methods. In a further part, the book characterizes the corresponding system modules that allow the addition of HOTs to commercial microscopes with regard to stability and diffraction efficiency. Further, based on experiments and microfluidic applications, it demonstrates the functionality of the combined setup, and discusses several types of non-diffracting beams and their application in optical manipulation. The book shows that holographic optical tweezers, including several non-diffracting beam types like Mathieu beams, combined parabolic and Airy beams, not only open up the possibility of generating efficient multiple dynamic traps for micro and nano particles with forces in the pico and nano newton range, but also the opportunity to exert optical torque with special beams like Bessel beams, which can facilitate the movement and rotation of particles by generating microfluidic flows. The last part discusses the potential use of a slightly modified DHM-HOT-system to explore the functionality of direct laser writing based on a two photon absorption process in a negative photoresist with a continuous wave laser.Springeroai:cds.cern.ch:26469692018
spellingShingle Other Fields of Physics
Stuerwald, Stephan
Digital holographic methods: low coherent microscopy and optical trapping in nano-optics and biomedical metrology
title Digital holographic methods: low coherent microscopy and optical trapping in nano-optics and biomedical metrology
title_full Digital holographic methods: low coherent microscopy and optical trapping in nano-optics and biomedical metrology
title_fullStr Digital holographic methods: low coherent microscopy and optical trapping in nano-optics and biomedical metrology
title_full_unstemmed Digital holographic methods: low coherent microscopy and optical trapping in nano-optics and biomedical metrology
title_short Digital holographic methods: low coherent microscopy and optical trapping in nano-optics and biomedical metrology
title_sort digital holographic methods: low coherent microscopy and optical trapping in nano-optics and biomedical metrology
topic Other Fields of Physics
url https://dx.doi.org/10.1007/978-3-030-00169-8
http://cds.cern.ch/record/2646969
work_keys_str_mv AT stuerwaldstephan digitalholographicmethodslowcoherentmicroscopyandopticaltrappinginnanoopticsandbiomedicalmetrology