Pmma Microfluidic

PMMA microfluidics is the design and use of microscale fluidic devices fabricated from polymethyl methacrylate, a transparent thermoplastic valued for its optical clarity, low cost, and manufacturability. Within patterned channels, pumps or pressure differences move small liquid volumes while channel geometry controls flow, mixing, separation, and transport, enabling precise handling of samples and reagents. Engineering applications include lab-on-a-chip systems, analytical testing, biological assays, and point-of-care devices, where PMMA supports visual monitoring and integration of compact fluidic functions. Its accessible fabrication and adaptable platform also make it useful for prototyping and scalable microdevice development.

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Research

JoVE Journal - Engineering

Solvent Bonding for Fabrication of PMMA and COP Microfluidic Devices

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Cited by 30 •

2017

Solvent bonding is a simple and versatile method for fabricating thermoplastic microfluidic devices with high quality bonds. We describe a protocol to achieve strong, optically clear bonds in PMMA and COP microfluidic devices that preserve microfeature details, by a judicious combination of pressure, temperature, an appropriate solvent, and device geometry.

A Multi-compartment CNS Neuron-glia Co-culture Microfluidic Platform

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Cited by 18 •

2009

We developed a novel multi-compartment neuron co-culture microsystem platform for in vitro CNS axon-glia interaction research. The platform is capable of conducting up to six independent experiments in parallel and was fabricated using a newly developed macro/micro hybrid fabrication method.

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 Bioprinting for Engineering Vascularized Tissues and Organoids

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Cited by 37 •

2017

We provide a generalized protocol based on a microfluidic bioprinting strategy for engineering a microfibrous vascular bed, where a secondary cell type could be further seeded into the interstitial space of this microfibrous structure to generate vascularized tissues and organoids.

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