Development of a Screen-Printable Liquid Metal Ink on PDMS Substrates Toward Flexible Conductive Electronics
Abstract
1. Introduction
2. Experimental Section
2.1. Materials
2.2. Preparation of LM Inks
2.3. Screen Printing and Laser Activation
2.4. Characterization of LMI-PVP
2.5. Surface Tension Calculation
3. Results and Discussion
3.1. PVP Coating Mechanism of LM Particles and Ratio Optimization
3.2. Screen-Printable Ink for PDMS Low-Surface-Energy Substrates: Synergistic Optimization of Wettability and Rheology
3.3. Mechanism of Uniform Drying of LMI-PVP Ink Regulated with a Multi-Solvent System and the Principle of Laser Activation
3.4. Fabrication and Electrical Stability of LMI-PVP-PDMS Flexible Conductive Devices
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Work | Ink System | Processing Method | Activation Method | Conductivity | Main Focus |
|---|---|---|---|---|---|
| Cui et al. [11] | LM–MMT composite ink | Direct writing | Self-conductive | ~106 S/m | Wettability improvement and self-conductive LM composite ink |
| Shang et al. [21] | PVP-based LM ink with propylene glycol | Screen-printing | Water-spray sintering | ~105 S/m | Green-solvent LM ink and scalable water-spray sintering |
| Ma et al [22] | Highly concentrated LM ink with confinement gel strategy | Direct writing | Self-conductive | ~106 S/m | High LM loading, but high viscosity limits screen-printing suitability |
| Lin et al. [23] | High-internal-phase- emulsion gel LM ink | Direct ink writing/3D printing | Drying-induced conductivity | Not specified here | Rheology and shape retention of 3D-printable LM gel ink |
| Chiu et al. [24] | High-solid-content LM ink | Direct writing | Self-conductive | 105–106 S/m | High-solid-content ink and multilayer integration rather than mixed-solvent screen printing |
| This work | PVP-modified LM ink with EtOH/1,2-PG/DMF | Screen-printing | Laser activation | ~105 S/m | Mixed-solvent regulation of wetting, rheology, drying, and laser activation on PDMS |
| Probe Liquid | Total Surface Tension (mN/m) | Dispersive Component (mN/m) | Polar Component (mN/m) | Contact Angle on PDMS (°) |
|---|---|---|---|---|
| Deionized water | 72.8 | 21.8 | 51.0 | 109° |
| α-Bromonaphthalene | 44.4 | 44.4 | 0.0 | 63° |
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Guo, M.; Jin, S.; Liu, S.; Wang, F. Development of a Screen-Printable Liquid Metal Ink on PDMS Substrates Toward Flexible Conductive Electronics. Sensors 2026, 26, 3279. https://doi.org/10.3390/s26113279
Guo M, Jin S, Liu S, Wang F. Development of a Screen-Printable Liquid Metal Ink on PDMS Substrates Toward Flexible Conductive Electronics. Sensors. 2026; 26(11):3279. https://doi.org/10.3390/s26113279
Chicago/Turabian StyleGuo, Mengwen, Shengming Jin, Sanhu Liu, and Fang Wang. 2026. "Development of a Screen-Printable Liquid Metal Ink on PDMS Substrates Toward Flexible Conductive Electronics" Sensors 26, no. 11: 3279. https://doi.org/10.3390/s26113279
APA StyleGuo, M., Jin, S., Liu, S., & Wang, F. (2026). Development of a Screen-Printable Liquid Metal Ink on PDMS Substrates Toward Flexible Conductive Electronics. Sensors, 26(11), 3279. https://doi.org/10.3390/s26113279
