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Piezoelectric-like effect manipulation of polymeric piezoelectrets through machine-learning-assisted pore morphology analysis and porous structural design

  • Zirong Chen
  • , Jianwei Cheng
  • , Yifan Li
  • , Yang Liu
  • , Yutong Zhang
  • , Shiwei Yang
  • , Hu Zhao
  • , Shaoqi Huang
  • , Haoyu Gu
  • , Chongpu Zhai
  • , Yajun Luo
  • , Shuwen Zhang
  • , Minglong Xu
  • School of Aerospace Engineering

科研成果: 期刊稿件文章同行评审

摘要

Polymeric porous piezoelectrets offer advantages for flexible electronics because of their mechanical compliance and low density. Their piezoelectric-like response originates from charge accumulation at pore interfaces and deformation of pores and wrinkles. Therefore, enhancing charge density and precisely manipulating pore shape are critical for enhancing electromechanical performance. Addressing the challenges of irregular pore morphologies, this work applies a machine-learning-assisted pore morphology analysis workflow to segment, quantify, and classify pore geometries, subsequently guiding a fabrication strategy that adjusts pore irregularity and aspect ratio to enhance the equivalent piezoelectric coefficient. This methodology provides a systematic framework for quantitative microstructure design, offering practical guidance for enhancing the piezoelectric-like response and tailoring the mechanical properties of porous piezoelectrets.

源语言英语
期刊论文编号085010
期刊Smart Materials and Structures
35
8
DOI
出版状态已出版 - 8月 2026
已对外发布

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