Abstract
Flexible piezoelectric polymers such as polyvinylidene fluoride (PVDF) are essential for wearable electronics, yet their development is hindered by a fundamental trade-off between piezoelectric response and dielectric loss. Here, we introduce a multiscale synergy strategy that overcomes this limitation by integrating electric-assisted 3D printing with molecular and nanoscale engineering. Molecular chain rigidification promotes β-phase formation, while core-shell nanoparticles (Al2O3@BaTiO3) minimize interfacial polarization loss. Crucially, the printing process applies an in-situ electric field that aligns dipoles during material solidification. This approach produces a flexible film with a piezoelectric coefficient (d33) of −45.3 pC N−1, four times that of commercial PVDF, while maintaining a low dielectric loss of 0.02 at 1 kHz and a high breakdown strength of 501 MV m−1. Multi-scale simulations and in-situ measurements confirm the synergistic mechanisms of homogeneous electric field distribution and efficient stress transfer. The resulting device demonstrates stable performance in energy conversion, establishing a design framework for high-performance polymer-based electromechanical devices.
| Original language | English |
|---|---|
| Article number | 118316 |
| Journal | Sensors and Actuators A: Physical |
| Volume | 410 |
| Issue number | P2 |
| DOIs | |
| State | Published - 1 Nov 2026 |
| Externally published | Yes |
Keywords
- Dielectric loss
- Electric-assisted 3D printing
- Nanocomposite
- Piezoelectric coefficient
- PVDF
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