3D Printing of High-Porosity Membranes with Submicron Pores for Microfluidics
Abstract
:1. Introduction
2. Materials and Methods
2.1. Membrane Material and Fabrication Method
2.2. 3D Printing Parameter Sweeps for Optimizing Membrane Fabrication
2.3. Membrane Characterization
2.3.1. Imaging
2.3.2. Membrane Thickness
2.3.3. Membrane Image Analysis
2.3.4. Membrane Porosity
2.3.5. Pore Size
2.3.6. Pore Distribution
3. Results
3.1. Overview of the Printed Membrane Tables
3.2. Membrane Thickness
3.3. Membrane Tailorability
3.4. Effects of Hatching Pitch and Angle on Pore Count and Diameter
3.5. Influence of Laser Exposure Time on Pore size and Pore Size Distribution
3.6. Membrane Porosity Analysis
3.7. Membrane Quality Check Criterion
3.8. Implementation of Quality Criterion on 2 µm Pitch Membranes
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
MEMS | Micro-electromechanical system |
LOC | Lab on a chip |
FDM | Fused deposition modeling |
SLA | Stereo lithography |
DLP | Digital light processing |
2PL | Two-photon lithography |
SEM | Scanning electron microscopy |
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Hoskins, J.K.; Zou, M. 3D Printing of High-Porosity Membranes with Submicron Pores for Microfluidics. Nanomanufacturing 2024, 4, 120-137. https://doi.org/10.3390/nanomanufacturing4030009
Hoskins JK, Zou M. 3D Printing of High-Porosity Membranes with Submicron Pores for Microfluidics. Nanomanufacturing. 2024; 4(3):120-137. https://doi.org/10.3390/nanomanufacturing4030009
Chicago/Turabian StyleHoskins, Julia K., and Min Zou. 2024. "3D Printing of High-Porosity Membranes with Submicron Pores for Microfluidics" Nanomanufacturing 4, no. 3: 120-137. https://doi.org/10.3390/nanomanufacturing4030009
APA StyleHoskins, J. K., & Zou, M. (2024). 3D Printing of High-Porosity Membranes with Submicron Pores for Microfluidics. Nanomanufacturing, 4(3), 120-137. https://doi.org/10.3390/nanomanufacturing4030009