| Literature DB >> 23554584 |
Hongjun Song1, Yi Wang, Kapil Pant.
Abstract
This paper presents an analytical study of the cross-stream diffusion of an analyte in a rectangular microchannel under combined electroosmotic flow (EOF) and pressure driven flow to investigate the heterogeneous transport behavior and spatially-dependent diffusion scaling law. An analytical model capable of accurately describing 3D steady-state convection-diffusion in microchannels with arbitrary aspect ratios is developed based on the assumption of the thin Electric Double Layer (EDL). The model is verified against high-fidelity numerical simulation in terms of flow velocity and analyte concentration profiles with excellent agreement (<0.5% relative error). An extensive parametric analysis is then undertaken to interrogate the effect of the combined flow velocity field on the transport behavior in both the positive pressure gradient (PPG) and negative pressure gradient (NPG) cases. For the first time, the evolution from the spindle-shaped concentration profile in the PPG case, via the stripe-shaped profile (pure EOF), and finally to the butterfly-shaped profile in the PPG case is obtained using the analytical model along with a quantitative depiction of the spatially-dependent diffusion layer thickness and scaling law across a wide range of the parameter space.Entities:
Keywords: analytical model; combined electroosmotic and pressure driven flow; cross stream; diffusion; microfluidic; scaling law
Year: 2012 PMID: 23554584 PMCID: PMC3611982 DOI: 10.1007/s10404-012-1058-8
Source DB: PubMed Journal: Microfluid Nanofluidics ISSN: 1613-4982 Impact factor: 2.529