Microfluidic Control Valves

Microfluidic control valves are devices that regulate the movement, timing, and routing of tiny fluid volumes within microscale channels, making them essential for precise lab-on-a-chip systems. In many designs, pneumatic pressure acts on a flexible elastomeric membrane, deflecting it to open or seal a channel and thereby control flow without mechanically moving parts in the fluid path. These valves support fluid metering, mixing, isolation, and sequential reagent delivery in bioengineering platforms. Their compact size and programmable operation enable automated cell culture, biochemical assays, drug screening, and point-of-care diagnostics while reducing sample and reagent consumption.

Microfluidic Control Valves - Related Videos

Research

JoVE Journal - Bioengineering

Multi-step Variable Height Photolithography for Valved Multilayer Microfluidic Devices

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Cited by 26 •

2017

Multilayer microfluidic devices often involve the fabrication of master molds with complex geometries for functionality. This article presents a complete protocol for multi-step photolithography with valves and variable height features tunable to any application. As a demonstration, we fabricate a microfluidic droplet generator capable of producing hydrogel beads.

Microfluidic Chips Controlled with Elastomeric Microvalve Arrays

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Cited by 7 •

2007

We demonstrate protocols for manufacturing and automating elastomeric polydimethylsiloxane (PDMS)-based microvalve arrays that need no extra energy to close and feature photolithographically defined precise volumes. A parallel subnanoliter-volume mixer and an integrated microfluidic perfusion system are presented.

Research

JoVE Journal - Chemistry
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Microfluidic Pneumatic Cages: A Novel Approach for In-chip Crystal Trapping, Manipulation and Controlled Chemical Treatment

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Cited by 6 •

2016

Herein, we describe the fabrication and operation of a double-layer microfluidic system made of polydimethylsiloxane (PDMS). We demonstrate the potential of this device for trapping, directing the coordination pathway of a crystalline molecular material and controlling chemical reactions onto on-chip trapped structures.

Revealing Electromechanical Control of Tissue Homeostasis Using a Two-Layer Microfluidic Device

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2025

Here, we present a protocol to fabricate a unique two-layer microfluidic device to study the electromechanical regulation of epithelial tissue homeostasis. The device applies static physiological electric currents perpendicular to the tissue plane, impacting cell-cell adhesion, proliferation, and extrusion. Live-cell imaging and mechanical stress measurements reveal mechanisms of these processes.

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