3D Printed MEMS Technology—Recent Developments and Applications
Abstract
:1. Introduction
2. Typical 3D Printing Techniques
3. 3D Printed Microfluidic Devices
3.1. General Remarks on Toxicity of Materials for Biotechnological Applications
3.2. Photolithography
3.3. Two-Photon and Multi-Photon Polymerization
3.4. Inkjet 3D Printing
3.5. Metal Additive Manufacturing
3.6. Preparing Molds by 3D Printing Methods
3.7. Combining 3D Printing with Other Technologies
4. 3D-Printed Microelectromechanical Systems (MEMS) Sensors
4.1. Chemical Sensors
4.2. Physical Sensors
5. 3D-Printed MEMS Actuators
5.1. Switches
5.2. Vibration Actuator
5.3. Aeronautics and Astronautics
5.4. Nanopositioning
5.5. Macro-Positioning
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Technology | Min. Feature Size | Material | Ref. |
---|---|---|---|
Selective laser sintering | <400 µm | Div. Polymers | [21,22] |
Fused deposition modeling | 200 µm | Diverse polymers | [23] |
Robot dispensing | 200 µm | Hydrogels | [24] |
Stereolithography | 30–70 µm | Photosensitive polymers | [25] |
3D inkjet printing | 28 µm | Photoresist | [24] |
Resonant direct laser writing | 1–4 µm | IP-Dip photoresist | [26] |
Multiphoton absorption polymerization | 1 µm | SU8 photoresist | [27] |
Two-photon polymerization | 0.28–1.5 µm | Photoresists | [28] |
Direct laser writing | 0.085–1.5 µm | Photoresists | [29] |
Technology | Possible Applications |
---|---|
Fused deposition modeling | Dielectric-conductive systems, switches |
Micro-stereolithography | In situ tensile tests of micro- or nanowires, electrothermal microactuator |
Stereolithography | Microfluidic devices, conductive parts, molds, cantilevers, magnetic actuators |
3D inkjet printing | Microfluidic devices, Venturi microflowmeter, conductive structures, strain gauge sensors |
Multiphoton absorption polymerization | Microfluidic devices, photonic crystals, nanophotonic devices |
Two-photon polymerization | Microfluidic devices, electrothermal microactuator |
Binder jet printing | Microfluidic devices, in-line injection of volatile organic compounds |
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Blachowicz, T.; Ehrmann, A. 3D Printed MEMS Technology—Recent Developments and Applications. Micromachines 2020, 11, 434. https://doi.org/10.3390/mi11040434
Blachowicz T, Ehrmann A. 3D Printed MEMS Technology—Recent Developments and Applications. Micromachines. 2020; 11(4):434. https://doi.org/10.3390/mi11040434
Chicago/Turabian StyleBlachowicz, Tomasz, and Andrea Ehrmann. 2020. "3D Printed MEMS Technology—Recent Developments and Applications" Micromachines 11, no. 4: 434. https://doi.org/10.3390/mi11040434
APA StyleBlachowicz, T., & Ehrmann, A. (2020). 3D Printed MEMS Technology—Recent Developments and Applications. Micromachines, 11(4), 434. https://doi.org/10.3390/mi11040434