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Bonding Optimization Strategies for Flexibly Preparing Multi-Component Piezoelectric Crystals

  • Yuan Bai
  • , Gang Tang
  • , Lei Xie
  • , He Lian
  • , Shihao Wang
  • , Chaopeng Liu
  • , Qiao Yu
  • , Jianying Ji
  • , Kailiang Ren
  • , Xiaodan Cao
  • , Cong Li
  • , Lili Zhou
  • , Yizhu Shan
  • , Hongyu Meng*
  • , Zhou Li*
  • *此作品的通讯作者
  • Chinese Academy of Sciences
  • Guangxi University
  • Beijing Institute of Technology
  • Central South University
  • Shenyang Pharmaceutical University
  • University of Chinese Academy of Sciences

科研成果: 期刊稿件文章同行评审

摘要

Flexible films with optimal piezoelectric performance and water-triggered dissolution behavior are fabricated using the co-dissolution–evaporation method by mixing trimethylchloromethyl ammonium chloride (TMCM-Cl), CdCl2, and polyethylene oxide (PEO, a water-soluble polymer). The resultant TMCM trichlorocadmium (TMCM-CdCl3) crystal/PEO film exhibited the highest piezoelectric coefficient (d33) compared to the films employing other polymers because PEO lacks electrophilic or nucleophilic side-chain groups and therefore exhibits relatively weaker and fewer bonding interactions with the crystal components. Furthermore, upon slightly increasing the amount of one precursor of TMCM-CdCl3 during co-dissolution, this component gained an advantage in the competition against PEO for bonding with the other precursor. This in turn improved the co-crystallization yield of TMCM-CdCl3 and further enhanced d33 to ≈71 pC/N, exceeding that of polyvinylidene fluoride (a commercial flexible piezoelectric) and most other molecular ferroelectric crystal-based flexible films. This study presents an important innovation and progress in the methodology and theory for maintaining a high piezoelectric performance during the preparation of flexible multi-component piezoelectric crystal films.

源语言英语
文章编号2411589
期刊Advanced Materials
37
4
DOI
出版状态已出版 - 29 1月 2025
已对外发布

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