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Updated: Jan 14, 2026

Three-Dimensionally Printed Microfluidic Cross-flow System for Ultrafiltration/Nanofiltration Membrane Performance Testing
Published on: February 13, 2016
Selective laser etching fabrication of stacked microporous membranes for multisize particle separation in 3D
Diego Duran-Arteaga1, William Chen2,3,4, Darius G Rackus2,3,4
1Department of Electrical, Computer and Biomedical Engineering, Toronto Metropolitan University, Toronto, M5B 2K3, ON, Canada.
Abstract:
Glass substrates are widely utilized in microfluidic applications due to their exceptional properties, including optical transparency, biocompatibility, chemical and thermal stability, and compatibility with standard microfabrication techniques. These characteristics enable high-resolution micro- and nanopatterning through methods such as wet and dry etching, laser ablation, and photolithography, facilitating the fabrication of complex and reproducible microfluidic components-such as microchannels, microchambers, micropumps, mixers, sensors, and membranes. In this study we leverage femtosecond technology to fabricate a novel multilayer microfluidic system that integrates two porous membranes, with precisely engineered pore geometries. Fabrication of the multilayer device was based on a selective laser etching process (SLE) using a glass 3D printer (LightFab GmbH, Germany), to obtain microchannels and membranes with pore sizes of 5 [Formula: see text]m and 25 [Formula: see text]m. The SLE sequence was optimized to minimize thermal ablation, preserving pore integrity and achieving high fidelity in pore size and distribution. Potassium hydroxide (KOH) was used for wet etching, leveraging the selectivity of fused silica to further refine pore geometry. A microwelding technique was optimized to achieve a consistent interlayer gap, essential for structural integrity and effective filtration. Results of filtration tests demonstrated that 30 [Formula: see text]m particles were selectively trapped in 25 [Formula: see text]m-pore membranes and 8 [Formula: see text]m particles were selectively trapped in 5 [Formula: see text]m filters, while both membranes allow the passage of 2 [Formula: see text]m particles. These results validate the ability of the system to perform size-based separation in microfluidic environments, highlighting the potential of femtosecond laser-based fabrication to produce robust, scalable, multilayer filtration devices for high throughput applications. This approach opens new avenues for developing integrated microfluidic systems capable of simultaneous filtration, separation, and analysis, paving the way for automated lab-on-a-chip applications.
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