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Erschienen in: Microsystem Technologies 2/2017

14.06.2015 | Technical Paper

Design on MEMS-based 3D biochip for drug-released dispenser

verfasst von: Hsiang-Chen Hsu, Li-Ming Chu, Baojun Liu, Chien-Yuan Lai

Erschienen in: Microsystem Technologies | Ausgabe 2/2017

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Abstract

In this study, the microfluidic emulsion biochip has been fabricated based on micro-electro-mechanical system technique which integrates microfluidic designed micro-pumps, micro-valves and nozzles with different micro-channels. The quantitative droplet nozzle with micro-pump controlled pressure plays a key role to determine the size of the micro-droplets. The designed 3D dispenser using PDMS material provides micro-channels for different samples in different layers. Drug-released process can be performed as follows: micro-pump is first actuated to store the desired fluid sample in the cavity, followed-by micro-valves compression, the sample is spread out through the nozzle and drops into the bottom channel. The features of this multiple sampling microfluidic chips are (1) quantitative droplets by micro-pump pressure control (2) volume of droplets (3) different samples without contamination. The oil-in-water (W/O) emulsion droplet is formed by a connected hydrodynamic focusing T-shaped structure. Similarly, the double emulsion droplets, water-in-oil-in-water (W/O/W) can be formed by using the second T-shaped structure at the intersection of the oil and the external water. The diameter of emulsion droplets strongly depend on the velocity of water or oil. A series of experimental works is conducted in this research.

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Metadaten
Titel
Design on MEMS-based 3D biochip for drug-released dispenser
verfasst von
Hsiang-Chen Hsu
Li-Ming Chu
Baojun Liu
Chien-Yuan Lai
Publikationsdatum
14.06.2015
Verlag
Springer Berlin Heidelberg
Erschienen in
Microsystem Technologies / Ausgabe 2/2017
Print ISSN: 0946-7076
Elektronische ISSN: 1432-1858
DOI
https://doi.org/10.1007/s00542-015-2594-4

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