Projects per year
Abstract
Digital microfluidics combines the advantages of low consumption of reagents with a high flexibility of processing fluid samples automatically. For applications in life sciences not only the processing but also the characterization of fluid analytes is crucial. In this contribution a microfluidic platform combining the actuation principle of electro wetting on dielectrics for droplet manipulations and the sensor principle of impedance spectroscopy for the characterization of fluid composition and condition is presented. The fabrication process of the microfluidic platform comprises physical vapor deposition and structuring of the metal electrodes onto a substrate, the deposition of a dielectric isolator and a hydrophobic top coating. The key advantage of this microfluidic chip is the common electric nature of the sensor and the actuation principle, so no additional sensor integration is necessary. Multiple measurements on fluids of different composition (including rigid
particles and biologic cells) and of different conditions (temperature, sedimentation) were performed as well as online monitoring of in process parameters changing over time. These sample applications demonstrate the versatile applications of this combined technology.
Original language | English |
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Title of host publication | Smart Sensors, Actuators, and MEMS V |
Pages | 806625 |
Number of pages | 12 |
DOIs | |
Publication status | Published - May 2011 |
Publication series
Name | Proceedings of SPIE - The International Society for Optical Engineering |
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Volume | 8066 |
ISSN (Print) | 0277-786X |
Fields of science
- 203017 Micromechanics
- 202019 High frequency engineering
- 202028 Microelectronics
- 202039 Theoretical electrical engineering
- 202037 Signal processing
- 202027 Mechatronics
- 202036 Sensor systems
JKU Focus areas
- Mechatronics and Information Processing
Projects
- 1 Finished
-
Dynamic capillary systems towards disposable fluid probes
Lederer, T. (Researcher) & Hilber, W. (PI)
01.03.2008 → 31.03.2012
Project: Funded research › FWF - Austrian Science Fund