» Articles » PMID: 34635693

A Millisecond Passive Micromixer with Low Flow Rate, Low Sample Consumption and Easy Fabrication

Overview
Journal Sci Rep
Specialty Science
Date 2021 Oct 12
PMID 34635693
Citations 14
Authors
Affiliations
Soon will be listed here.
Abstract

Fast mixing of small volumes of solutions in microfluidic devices is essential for an accurate control and observation of the dynamics of a reaction in biological or chemical studies. It is often, however, a challenging task, as the Reynolds number (Re) in microscopic devices is typically < 100. In this report, we detail a novel mixer based on the "staggered herring bone" (SHB) pattern and "split-recombination" strategies with an optimized geometry, the periodic rotation of the flow structure can be controlled and recombined in a way that the vortices and phase shifts of the flow induce intertwined lamellar structures, thus increasing the contact surface and enhancing mixing. The optimization improves the mixing while using a low flow rate, hence a small volume for mixing and moderate pressure drops. The performances of the patterns were first simulated using COMSOL Multiphysics under different operating conditions. The simulation indicates that at very low flow rate (1-12 µL·min) and Re (3.3-40), as well as a very small working volume (~ 3 nL), a very good mixing (~ 98%) can be achieved in the ms time range (4.5-78 ms). The most promising design was then visualized experimentally, showing results that are consistent with the outcomes of the simulations. Importantly, the devices were fabricated using a classical soft-lithography method, as opposed to additive manufacturing often used to generate complex mixing structures. This new device minimizes the sample consumption and could therefore be applied for studies using precious samples.

Citing Articles

Design and Mixing Analysis of a Passive Micromixer with Circulation Promoters.

Juraeva M, Kang D Micromachines (Basel). 2024; 15(7).

PMID: 39064343 PMC: 11278850. DOI: 10.3390/mi15070831.


Mixing Performance of a Passive Micromixer Based on Split-to-Circulate (STC) Flow Characteristics.

Juraeva M, Kang D Micromachines (Basel). 2024; 15(6).

PMID: 38930743 PMC: 11205592. DOI: 10.3390/mi15060773.


Acoustohydrodynamic micromixers: Basic mixing principles, programmable mixing prospectives, and biomedical applications.

Bai C, Tang X, Li Y, Arai T, Huang Q, Liu X Biomicrofluidics. 2024; 18(2):021505.

PMID: 38659428 PMC: 11037935. DOI: 10.1063/5.0179750.


Key Fabrications of Chitosan Nanoparticles for Effective Drug Delivery Using Flow Chemistry Reactors.

Huanbutta K, Sriamornsak P, Suwanpitak K, Klinchuen N, Deebugkum T, Teppitak V Int J Nanomedicine. 2023; 18:7889-7900.

PMID: 38146468 PMC: 10749571. DOI: 10.2147/IJN.S433756.


Design and Mixing Analysis of a Passive Micromixer Based on Curly Baffles.

Juraeva M, Kang D Micromachines (Basel). 2023; 14(9).

PMID: 37763958 PMC: 10535907. DOI: 10.3390/mi14091795.


References
1.
Williams M, Longmuir K, Yager P . A practical guide to the staggered herringbone mixer. Lab Chip. 2008; 8(7):1121-9. PMC: 2792635. DOI: 10.1039/b802562b. View

2.
Stroock A, McGraw G . Investigation of the staggered herringbone mixer with a simple analytical model. Philos Trans A Math Phys Eng Sci. 2004; 362(1818):971-86. DOI: 10.1098/rsta.2003.1357. View

3.
Gulati S, Rouilly V, Niu X, Chappell J, Kitney R, Edel J . Opportunities for microfluidic technologies in synthetic biology. J R Soc Interface. 2009; 6 Suppl 4:S493-506. PMC: 2843966. DOI: 10.1098/rsif.2009.0083.focus. View

4.
Lim T, Son Y, Jeong Y, Yang D, Kong H, Lee K . Three-dimensionally crossing manifold micro-mixer for fast mixing in a short channel length. Lab Chip. 2010; 11(1):100-3. DOI: 10.1039/c005325m. View

5.
Lee H, Voldman J . Optimizing micromixer design for enhancing dielectrophoretic microconcentrator performance. Anal Chem. 2007; 79(5):1833-9. DOI: 10.1021/ac061647q. View