Open Microfluidic Capillary Systems

Erwin Berthier, Ashley M. Dostie, Ulri N. Lee, Jean Berthier, Ashleigh B. Theberge

Analytical Chemistry · 2019 · 140 citations · 95 references

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TL;DR

Open microfluidic capillary systems manipulate fluids via capillary forces in channels without enclosing walls, enabling easy access for sampling and reagent addition, and are simple to fabricate using 3D printing or injection molding. This perspective aims to outline the fundamentals, advantages, design and fabrication strategies, analytical considerations, and diverse applications of open microfluidic capillary systems. The authors review key design principles, fabrication techniques, flow analysis, and modular device features that together form a toolbox for fluid manipulation in open microfluidic systems.

Abstract

Open microfluidic capillary systems are a rapidly evolving branch of microfluidics where fluids are manipulated by capillary forces in channels lacking physical walls on all sides. Typical channel geometries include grooves, rails, or beams and complex systems with multiple air–liquid interfaces. Removing channel walls allows access for retrieval (fluid sampling) and addition (pipetting reagents or adding objects like tissue scaffolds) at any point in the channel; the entire channel becomes a "device-to-world" interface, whereas such interfaces are limited to device inlets and outlets in traditional closed-channel microfluidics. Open microfluidic capillary systems are simple to fabricate and reliable to operate. Prototyping methods (e.g., 3D printing) and manufacturing methods (e.g., injection molding) can be used seamlessly, accelerating development. This Perspective highlights fundamentals of open microfluidic capillary systems including unique advantages, design considerations, fabrication methods, and analytical considerations for flow; device features that can be combined to create a "toolbox" for fluid manipulation; and applications in biology, diagnostics, chemistry, sensing, and biphasic applications.

References

95