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铁电体中的快速光致伸缩效应

Fast Photostriction in Ferroelectrics.

作者信息

Liew Weng Heng, Chen Yunjie, Alexe Marin, Yao Kui

机构信息

Institute of Materials Research and Engineering (IMRE), A*STAR (Agency for Science, Technology and Research), Singapore, 138634, Singapore.

Department of Physics, University of Warwick, Coventry, CV4 7AL, UK.

出版信息

Small. 2022 Feb;18(7):e2106275. doi: 10.1002/smll.202106275. Epub 2022 Jan 12.

DOI:10.1002/smll.202106275
PMID:35018720
Abstract

Light-induced nonthermal strain, known as the photostrictive effect, offers a potential way to excite mechanical strain and acoustic wave remotely. The anisotropic photostrictive effect induced by the combination of bulk photovoltaic effect (BPVE) and converse piezoelectric effect in ferroelectric materials is known as too small and slow for the applications requiring a high strain rate, such as ultrasound generation and high-speed signal transmission. Here, a strategy to achieve high rate dynamic photostrictive strain by utilizing local fast responses under modulating continuous light excitation in the resonance condition is reported. A strain rate of 8.06 × 10  s is demonstrated under continuous light excitation, which is at least one order of magnitude higher than previous studies on bulk samples as seen in the literature. The significant photostrictive response exists even in depoled ferroelectric material without overall polarization. The theoretical analyses show that fast ferroelectric photostriction can be obtained through the combinational interaction mechanism of local BPVE and local converse piezoelectric effect existing only in the microscopic scale, thus circumventing the slow and low efficient BPVE charging up process across the macroscopic electrical terminals. The achieved fast photostriction and new understandings will open new opportunities to realize future wireless signal transmission and light-acoustic devices.

摘要

光致非热应变,即光致伸缩效应,为远程激发机械应变和声波提供了一种潜在途径。铁电材料中体光伏效应(BPVE)和逆压电效应相结合所产生的各向异性光致伸缩效应,对于诸如超声产生和高速信号传输等需要高应变速率的应用而言,被认为过小且过慢。在此,报道了一种通过在共振条件下调制连续光激发时利用局部快速响应来实现高速动态光致伸缩应变的策略。在连续光激发下展示了8.06×10 s的应变速率,这比文献中之前对体样品的研究至少高一个数量级。即使在没有整体极化的去极化铁电材料中也存在显著的光致伸缩响应。理论分析表明,快速铁电光致伸缩可通过仅存在于微观尺度的局部BPVE和局部逆压电效应的组合相互作用机制获得,从而规避了跨宏观电端子的缓慢且低效的BPVE充电过程。所实现的快速光致伸缩以及新的认识将为实现未来的无线信号传输和光声器件开辟新的机遇。

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