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Moldless PEGDA-Based Optoelectrofluidic Platform for Microparticle Selection
Author(s) -
Shih-Mo Yang,
Tung-Ming Yu,
Ming-Huei Liu,
Long Hsu,
ChengHsien Liu
Publication year - 2011
Publication title -
advances in optoelectronics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.118
H-Index - 21
eISSN - 1687-5648
pISSN - 1687-563X
DOI - 10.1155/2011/394683
Subject(s) - microparticle , materials science , microchannel , fabrication , microfluidics , optoelectronics , nanotechnology , polymer , coating , polystyrene , substrate (aquarium) , chemical engineering , composite material , medicine , oceanography , alternative medicine , pathology , geology , engineering
This paper reports on an optoelectrofluidic platform which consists of the organic photoconductive material, titanium oxide phthalocyanine (TiOPc), and the photocrosslinkable polymer, poly (ethylene glycol) diacrylate (PEGDA). TiOPc simplifies the fabrication process of the optoelectronic chip due to requiring only a single spin-coating step. PEGDA is applied to embed the moldless PEGDA-based microchannel between the top ITO glass and the bottom TiOPc substrate. A real-time control interface via a touch panel screen is utilized to select the target 15 μm polystyrene particles. When the microparticles flow to an illuminating light bar, which is oblique to the microfluidic flow path, the lateral driving force diverts the microparticles. Two light patterns, the switching oblique light bar and the optoelectronic ladder phenomenon, are designed to demonstrate the features. This work integrating the new material design, TiOPc and PEGDA, and the ability of mobile microparticle manipulation demonstrates the potential of optoelectronic approach

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