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在环境和水相环境中,通过数据立方体压电力显微镜探测机电行为。

Probing electromechanical behaviors by datacube piezoresponse force microscopy in ambient and aqueous environments.

机构信息

Key Laboratory of Polar Materials and Devices (MOE) and Technical Center for Multifunctional Magneto-Optical Spectroscopy (Shanghai), Department of Electronic Engineering, East China Normal University, Shanghai 200241, People's Republic of China.

出版信息

Nanotechnology. 2019 Jun 7;30(23):235701. doi: 10.1088/1361-6528/ab0866. Epub 2019 Feb 19.

Abstract

For assisting the in-depth investigations of widespread electromechanical phenomena in functional materials, piezoresponse force microscopy (PFM) has gradually evolved to realize full information-flow acquisition and fit the conductive liquid working environments. Here, we designed data cube (DCUBE) based PFM to collect the electromechanical effect into a high-dimensional array of piezoresponse by adding ac bias with a wide range of frequencies to the probe. The electromechanical and mechanical spectra can be consecutively extracted at each pixel in the intermittent-contact mode. High-resolution ferroelectric domains of the poled LiNbO were mapped, corresponding to the ideal phase contrasts of about 180° in air, decane, and deionized water. Rich information detection and non-contact mode in DCUBE-PFM bring many merits on the electromechanical characterizations, especially for elastic-inhomogeneous surfaces and soft materials. Moreover, we systematically reveal the Debye screening effect and time-resolved field-oriented ion dynamics, which play crucial roles in the reduction of PFM spatial resolution in electrolytes. These physical discussions provide strategies to further realize high-resolution electromechanical imaging in highly conductive liquid environments.

摘要

为了深入研究功能材料中的广泛机电现象,压电力显微镜(PFM)逐渐发展为实现全信息流采集,并适应导电液体工作环境。在这里,我们设计了基于数据立方体(DCUBE)的 PFM,通过向探针施加宽频率范围的交流偏压,将机电效应收集到压电阻抗的高维阵列中。在间歇接触模式下,可以在每个像素连续提取机电和机械谱。我们对极化的 LiNbO 进行了高分辨率铁电畴成像,对应于在空气中、癸烷中和去离子水中约 180°的理想相位对比度。DCUBE-PFM 的丰富信息检测和非接触模式在机电特性表征方面具有许多优点,特别是对于弹性不均匀表面和软材料。此外,我们系统地揭示了德拜屏蔽效应和时变场定向离子动力学,它们在电解质中降低 PFM 空间分辨率方面起着关键作用。这些物理讨论为进一步实现高导电性液体环境中的高分辨率机电成像提供了策略。

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