Abstract
We present herein a unique concept of multifrequency induced-charge electroosmosis (MICEO) actuated directly on driving electrode arrays, for highly-efficient simultaneous transport and convective mixing of fluidic samples in microscale ducts. MICEO delicately combines transversal AC electroosmotic vortex flow, and axial traveling-wave electroosmotic pump motion under external dual-Fourier-mode AC electric fields. The synthetic flow field associated with MICEO is mathematically analyzed under thin layer limit, and the particle tracing experiment with a special powering technique validates the effectiveness of this physical phenomenon. Meanwhile, the simulation results with a full-scale 3D computation model demonstrate its robust dual-functionality in inducing fully-automated analyte transport and chaotic stirring in a straight fluidic channel embedding double-sided quarter-phase discrete electrode arrays. Our physical demonstration with multifrequency signal control on nonlinear electroosmosis provides invaluable references for innovative designs of multifunctional on-chip analytical platforms in modern microfluidic systems.
| Original language | English |
|---|---|
| Article number | 447 |
| Journal | Micromachines |
| Volume | 10 |
| Issue number | 7 |
| DOIs | |
| State | Published - 1 Jul 2019 |
Keywords
- Dual-Fourier-modeACforcing
- Microfluidics
- Multifrequency induced-charge electroosmosis
- Simultaneous pumping and convective mixing
- Traveling-wave/standing-waveACelectroosmosis
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