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Wafer-scale heterostructured piezoelectric bio-organic thin films

  • Fan Yang
  • , Jun Li
  • , Yin Long
  • , Ziyi Zhang
  • , Linfeng Wang
  • , Jiajie Sui
  • , Yutao Dong
  • , Yizhan Wang
  • , Rachel Taylor
  • , Dalong Ni
  • , Weibo Cai
  • , Ping Wang
  • , Timothy Hacker
  • , Xudong Wang

Research output: Contribution to journalArticlepeer-review

334 Scopus citations

Abstract

Piezoelectric biomaterials are intrinsically suitable for coupling mechanical and electrical energy in biological systems to achieve in vivo real-time sensing, actuation, and electricity generation. However, the inability to synthesize and align the piezoelectric phase at a large scale remains a roadblock toward practical applications. We present a wafer-scale approach to creating piezoelectric biomaterial thin films based on g-glycine crystals. The thin film has a sandwich structure, where a crystalline glycine layer self-assembles and automatically aligns between two polyvinyl alcohol (PVA) thin films. The heterostructured glycine-PVA films exhibit piezoelectric coefficients of 5.3 picocoulombs per newton or 157.5 × 10−3 volt meters per newton and nearly an order of magnitude enhancement of the mechanical flexibility compared with pure glycine crystals. With its natural compatibility and degradability in physiological environments, glycine-PVA films may enable the development of transient implantable electromechanical devices.

Original languageEnglish
Pages (from-to)337-342
Number of pages6
JournalScience
Volume373
Issue number6552
DOIs
StatePublished - 16 Jul 2021
Externally publishedYes

ASJC Scopus subject areas

  • General

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