Liquid Gradient Refractive Index Microlens for Dynamically Adjusting the Beam Focusing

An in-plane liquid gradient index (L-GRIN) microlens is designed for dynamically adjusting the beam focusing. The ethylene glycol solution (core liquid) withde-ionized (DI) water (cladding liquid) is co-injected into the lens chamber to form a gradient refractive index profile. The influences of the...

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Main Authors: Zichun Le, Yunli Sun, Ying Du
Format: Article
Language:English
Published: MDPI AG 2015-12-01
Series:Micromachines
Subjects:
Online Access:http://www.mdpi.com/2072-666X/6/12/1469
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spelling doaj-58b6f46f2839462db82abcca92bb6c902020-11-24T23:12:04ZengMDPI AGMicromachines2072-666X2015-12-016121984199510.3390/mi6121469mi6121469Liquid Gradient Refractive Index Microlens for Dynamically Adjusting the Beam FocusingZichun Le0Yunli Sun1Ying Du2College of Sciences, Zhejiang University of Technology, Hangzhou 310023, ChinaCollege of Sciences, Zhejiang University of Technology, Hangzhou 310023, ChinaCollege of Sciences, Zhejiang University of Technology, Hangzhou 310023, ChinaAn in-plane liquid gradient index (L-GRIN) microlens is designed for dynamically adjusting the beam focusing. The ethylene glycol solution (core liquid) withde-ionized (DI) water (cladding liquid) is co-injected into the lens chamber to form a gradient refractive index profile. The influences of the diffusion coefficient, mass fraction of ethylene glycol and flow rate of liquids on the refractive index profile of L-GRIN microlens are analyzed, and the finite element method and ray tracing method are used to simulate the convection-diffusion process and beam focusing process, which is helpful for the prediction of focusing effects and manipulation of the device. It is found that not only the focal length but the focal spot of the output beam can be adjusted by the diffusion coefficient, mass fraction and flow rate of liquids. The focal length of the microlens varies from 942 to 11 μm when the mass fraction of the ethylene glycol solution varies from 0.05 to 0.4, and the focal length changes from 127.1 to 8 μm by varying the flow rate of the core liquid from 0.5 × 103 to 5 × 103 pL/s when there is no slip between the core and cladding inlet. The multiple adjustable microlens with a simple planar microfluidic structure can be used in integrated optics and lab-on-chip systems.http://www.mdpi.com/2072-666X/6/12/1469in-plane liquid gradient index (L-GRIN) microlensoptofluidics waveguideadjustable focal lengthconvection-diffusion processbeam focusingfinite element method
collection DOAJ
language English
format Article
sources DOAJ
author Zichun Le
Yunli Sun
Ying Du
spellingShingle Zichun Le
Yunli Sun
Ying Du
Liquid Gradient Refractive Index Microlens for Dynamically Adjusting the Beam Focusing
Micromachines
in-plane liquid gradient index (L-GRIN) microlens
optofluidics waveguide
adjustable focal length
convection-diffusion process
beam focusing
finite element method
author_facet Zichun Le
Yunli Sun
Ying Du
author_sort Zichun Le
title Liquid Gradient Refractive Index Microlens for Dynamically Adjusting the Beam Focusing
title_short Liquid Gradient Refractive Index Microlens for Dynamically Adjusting the Beam Focusing
title_full Liquid Gradient Refractive Index Microlens for Dynamically Adjusting the Beam Focusing
title_fullStr Liquid Gradient Refractive Index Microlens for Dynamically Adjusting the Beam Focusing
title_full_unstemmed Liquid Gradient Refractive Index Microlens for Dynamically Adjusting the Beam Focusing
title_sort liquid gradient refractive index microlens for dynamically adjusting the beam focusing
publisher MDPI AG
series Micromachines
issn 2072-666X
publishDate 2015-12-01
description An in-plane liquid gradient index (L-GRIN) microlens is designed for dynamically adjusting the beam focusing. The ethylene glycol solution (core liquid) withde-ionized (DI) water (cladding liquid) is co-injected into the lens chamber to form a gradient refractive index profile. The influences of the diffusion coefficient, mass fraction of ethylene glycol and flow rate of liquids on the refractive index profile of L-GRIN microlens are analyzed, and the finite element method and ray tracing method are used to simulate the convection-diffusion process and beam focusing process, which is helpful for the prediction of focusing effects and manipulation of the device. It is found that not only the focal length but the focal spot of the output beam can be adjusted by the diffusion coefficient, mass fraction and flow rate of liquids. The focal length of the microlens varies from 942 to 11 μm when the mass fraction of the ethylene glycol solution varies from 0.05 to 0.4, and the focal length changes from 127.1 to 8 μm by varying the flow rate of the core liquid from 0.5 × 103 to 5 × 103 pL/s when there is no slip between the core and cladding inlet. The multiple adjustable microlens with a simple planar microfluidic structure can be used in integrated optics and lab-on-chip systems.
topic in-plane liquid gradient index (L-GRIN) microlens
optofluidics waveguide
adjustable focal length
convection-diffusion process
beam focusing
finite element method
url http://www.mdpi.com/2072-666X/6/12/1469
work_keys_str_mv AT zichunle liquidgradientrefractiveindexmicrolensfordynamicallyadjustingthebeamfocusing
AT yunlisun liquidgradientrefractiveindexmicrolensfordynamicallyadjustingthebeamfocusing
AT yingdu liquidgradientrefractiveindexmicrolensfordynamicallyadjustingthebeamfocusing
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