Enhanced Inverse Piezoelectricity in Flexible PVDF Composites via Mesoporous Silica-Coated BST Core-Shell Submicron fillers

Abstract

Polyvinylidene fluoride (PVDF)-based piezoelectric materials show strong potential for use in flexible sensors and actuators. However, increasing the proportion of the electroactive β phase and improving interfacial compatibility with inorganic fillers remain major challenges. In this work, an interfacial transition-layer strategy is proposed using mesoporous SiO2 (mSiO2) is used to coat barium strontium titanate submicron particles (BST@mSiO2 SMPs). This alleviates the organic-inorganic interface mismatch and forms a coherent BST-mSiO2-PVDF transition structure. This architecture not only strengthens interfacial adhesion but also facilitates the crystallization of the electroactive β phase. Fourier-transform infrared spectroscopy reveals that at a BST@mSiO2 loading of 0.4 wt%, the composite attains a total β- and γ-phase content of 79%, with the pure β phase contributing 69%. When an external voltage is applied, the composite film exhibits self-excited vibration with a maximum displacement amplitude of 110 μm. These results demonstrate that interfacial transition-layer engineering is an effective approach for developing high-performance PVDF-based piezoelectric composites for flexible electronic devices and smart systems.

Article information

Article type
Paper
Submitted
06 Mar 2026
Accepted
20 Apr 2026
First published
23 Apr 2026

New J. Chem., 2026, Accepted Manuscript

Enhanced Inverse Piezoelectricity in Flexible PVDF Composites via Mesoporous Silica-Coated BST Core-Shell Submicron fillers

T. Pang, W. Zhao, R. Ma, M. Xi, S. Liu, J. Li, L. Ren, H. Wang, W. Zhao, Y. Wang, H. Li, D. Wang, D. Hu and B. Cui, New J. Chem., 2026, Accepted Manuscript , DOI: 10.1039/D6NJ00873A

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