Multi‐Interface Polarization Modulation in Cu@TiO 2 @MgO/PVDF for Enhanced Dielectric Constant and Breakdown Performances
Abstract
ABSTRACT Decoupling control and collaborative improvement in both dielectric constant ( ε ) and breakdown strength ( E b ) while holding low loss of polymeric composites, constitutes a challenge for power electronics and energy storage systems. To realize this objective in copper (Cu)/polyvinylidene fluoride (PVDF) nanocomposites, the Cu nanoparticles were initially coated with titanium oxide (TiO 2 ) and magnesium oxide (MgO), respectively, followed by compounding with PVDF to investigate the double‑shell’ effect on dielectric performance. The results demonstrate that the Cu@TiO 2 @MgO/PVDF displays elevated ε and E b , along with lower loss dissipation ( tanδ ) when compared to Cu/PVDF. The increased ε is attributed to the enhancement of both high‐frequency intra‑particle and low‑frequency inter‑particle polarizations resulting from the double‐interlayer. The TiO 2 @MgO not only prevents direct contact between Cu nanoparticles but also creates charge traps, reducing the tanδ and leakage conductivity. The double shell mitigates interfacial dielectric parameter mismatch, thereby enhancing the E b . Simulations and theoretical calculations reveal the multiple polarization mechanisms and the regulated charge transport behavior in the Cu@TiO 2 @MgO/PVDF. The conductive core‐insulating double‐shell strategy provides an insightful view on promoting multiple polarizations and suppressing charge migration in percolating polymer nanocomposites. The Cu@TiO 2 @MgO/PVDF with boosted ε and E b alongside suppressed tanδ showcases appealing potential applications in power electronic devices.
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Authors: Siyu Zhao, Wenying Zhou, Yaofei Lin, Xiaopeng Han, Chenyang Li, Xiubin Ren, Zhen Liu, Yuan Jia
Institutions: Xi'an International Studies University, Xi'an University of Science and Technology, Xi’an University