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Microscale Vortex-assisted Electroporator for Sequential Molecular Delivery
Published on: August 7, 2014
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Maximizing fluid delivered by bubble-free electroosmotic pump with optimum pulse voltage waveform
Mena E Tawfik1, Francisco J Diez1
1Rutgers, The State University of New Jersey, Piscataway, NJ, USA.
Electrophoresis
|November 19, 2016
Summary
This study introduces a novel numerical model to optimize pulse voltage waveforms for electroosmotic (EO) pumping. This method delays gas generation, enabling higher current densities and improved microfluidic pump efficiency.
Area of Science:
- Microfluidics
- Electrochemistry
- Fluid Dynamics
Background:
- Faradaic reactions at electrodes limit high electric field electroosmotic (EO) flow in microfluidic pumps.
- Gas generation from these reactions reduces pump efficiency and performance.
- Optimizing parameters like voltage, fluid, and pulse duration is crucial for high current density EO pumping.
Purpose of the Study:
- To develop a novel numerical model for predicting gas generation during EO pumping.
- To optimize pulse voltage waveforms for enhanced EO pump performance.
- To enable higher current densities than previously reported in EO pumping.
Main Methods:
- A novel numerical model was developed to predict the onset of gas generation.
- Optimized pulse voltage waveforms were calculated using theoretical models.
- Experimental measurements of fluid volume displaced and flow rate were used to validate the model.
Main Results:
- The numerical model successfully predicts the onset of gas generation.
- Optimized pulse voltage waveforms allow for delayed gas generation.
- Higher current densities were achieved, leading to improved EO pumping efficiency.
- Experimental results confirmed the effectiveness of the optimized waveforms.
Conclusions:
- The developed numerical model and optimized pulse voltage waveforms effectively mitigate gas generation in EO pumping.
- This approach allows for significantly higher current densities, enhancing microfluidic pump performance.
- The findings provide a pathway for more efficient and effective microfluidic devices.

