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A Polymer-based Piezoelectric Vibration Energy Harvester with a 3D Meshed-Core Structure
Published on: February 20, 2019
Core-Shell Biocompatible Piezoelectric Nanocomposite with Enhanced Cell Adhesion for Potential Biomedical
Iván de Jesús Rizo Álvarez1, Héctor Alejandro Bacilio Beltrán2, Yenni Guadalupe Velázquez Galván1
1Departamento de Matemáticas y Física, Instituto Tecnológico y de Estudios Superiores de Occidente, Periférico Sur Manuel Gómez Morín 8585, 45604 Tlaquepaque, Jalisco México.
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Flexible piezoelectric devices for biomedical applications often encounter a crucial balance between performance and biocompatibility. In this study, we introduce a core-shell approach to address this issue. A high-performance piezoelectric core, made of Rochelle salt embedded in a cytotoxic Ecoflex 00-30 matrix, was fully encapsulated by a multifunctional, biocompatible shell. This PDMS coating, reinforced with silanized cellulose nanofibers (Si-CNF), was surface-treated with cellulose nanofibers to actively support cell adhesion. The coating not only made the device nontoxic but also significantly improved its performance: the maximum output voltage increased by 163% (to 156.8 mV), and the elastic modulus nearly doubled (to 1.286 kPa). Additionally, the functionalized surface promoted HeLa cell adhesion comparable to standard culture substrates (p > 0.05). Our work demonstrates a successful design that eliminates the toxicity of core materials while enhancing electromechanical output, paving the way for safer, more effective implantable energy-harvesting devices.
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