Piezoelectric Performance of Porous Structure Piezoceramics for Gyroid Based on Digital Additive Manufacturing Technology

Abstract

This paper presents the development of Gyroid minimal surface-structured piezoceramics via Digital Light Processing (DLP) additive manufacturing technology. Piezoceramics, renowned for their mechanical-to-electrical energy conversion capability, have become indispensable in modern technologies due to their high sensitivity, rapid response, and excellent stability.However, traditional processing methods relying on molds severely restrict the fabrication of complex structures and optimization of piezoelectric performance. To address these limitations, we explored DLP technology, enabling precise construction of intricate geometries without mold constraints. After establishing the mathematical model of the Gyroid structure, finite element analysis was employed to simulate and optimize its piezoelectric properties. The DLPfabricated Gyroid-structured piezoceramics exhibited superior piezoelectric performance compared to conventional materials. Specifically, at a compressive strain of 3%, the average piezoelectric coefficient of the Gyroid structure reached 21.4 pC/N, while its energy harvesting quality factor improved to 1632.4 × 10⁻¹⁴ Pa⁻¹. This study not only provides a novel approach for piezoceramic design and manufacturing but also highlights the potential of DLP additive manufacturing in advancing high-performance piezoceramic materials for future technological applications.

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Article information

Article type
Paper
Submitted
27 Jun 2025
Accepted
18 Sep 2025
First published
19 Sep 2025

J. Mater. Chem. C, 2025, Accepted Manuscript

Piezoelectric Performance of Porous Structure Piezoceramics for Gyroid Based on Digital Additive Manufacturing Technology

H. Xu, Z. Zeng, H. Li, X. Chen and A. Jiang, J. Mater. Chem. C, 2025, Accepted Manuscript , DOI: 10.1039/D5TC02468D

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