电场诱导的长程有序极化反转促进 BNT-BT-KNN 薄膜的超大应变响应

IF 9.6 1区 材料科学 Q1 CHEMISTRY, PHYSICAL Journal of Materiomics Pub Date : 2025-05-01 Epub Date: 2024-07-05 DOI:10.1016/j.jmat.2024.06.005
Jinyan Zhao , Zhe Wang , Liyan Dai , Chuying Chen , Kun Zheng , Ruihua An , Zenghui Liu , Nan Zhang , Yi Quan , Lingyan Wang , Genshui Wang , Xin Li , Yulong Zhao , Gang Niu , Wei Ren
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引用次数: 0

摘要

钛酸铋钠(BNT)基压电材料是无铅执行器应用中最有前途的候选者。随着器件集成化和小型化的要求,开发与半导体工艺兼容的微器件薄膜已成为当务之急。通过成分工程,在硅衬底上制备了具有超高应变响应、应变曲线迟滞可忽略的btc基薄膜。收集了与直流和温度相关的介电特性来研究薄膜的弛豫状态。基于电特性、原位拉曼测量和动力学PFM分析了其结构和极化转变演变随电场和时间的变化。在bnt基薄膜中,可逆相变和极化有序-无序转变是达到>;1.6%大应变的最重要特征。
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Ultra-large strain response in BNT-BT-KNN thin films boosted by electric field-induced inversion of long-range ordered polarization
Bismuth sodium titanate (BNT)-based piezoelectric materials are the most promising candidates for lead-free actuator applications. With the request for integration and size miniaturization of devices, it is urgent to develop thin films for microdevices to be compatible with semiconductor processes. Through composition engineering, BNT-based thin films were fabricated on silicon substrates, with ultra-high strain response and negligible hysteresis in strain curves. The DC-dependent and temperature-dependent dielectric properties were collected to investigate the relaxor state of thin films. The structure and polarization transition and evolution as a function of electric field and time were analyzed based on the electric characterization, in-situ Raman measurements, and dynamics PFM. The reversible phase transition and polarization order-disorder transformation are the most significant features for reaching a large strain of >1.6% in BNT-based thin films.
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来源期刊
Journal of Materiomics
Journal of Materiomics Materials Science-Metals and Alloys
CiteScore
14.30
自引率
6.40%
发文量
331
审稿时长
37 days
期刊介绍: The Journal of Materiomics is a peer-reviewed open-access journal that aims to serve as a forum for the continuous dissemination of research within the field of materials science. It particularly emphasizes systematic studies on the relationships between composition, processing, structure, property, and performance of advanced materials. The journal is supported by the Chinese Ceramic Society and is indexed in SCIE and Scopus. It is commonly referred to as J Materiomics.
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