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用扫描探针显微镜区分铁电和非铁电机电效应。

Differentiating Ferroelectric and Nonferroelectric Electromechanical Effects with Scanning Probe Microscopy.

机构信息

∥Materials Science and Engineering, University of Wisconsin, Madison, Wisconsin 53706, United States.

⊥State Key Laboratory of Low-Dimensional Quantum Physics and Department of Physics, Tsinghua University, Beijing 100084, China.

出版信息

ACS Nano. 2015 Jun 23;9(6):6484-92. doi: 10.1021/acsnano.5b02227. Epub 2015 Jun 8.

Abstract

Ferroelectricity in functional materials remains one of the most fascinating areas of modern science in the past several decades. In the last several years, the rapid development of piezoresponse force microscopy (PFM) and spectroscopy revealed the presence of electromechanical hysteresis loops and bias-induced remnant polar states in a broad variety of materials including many inorganic oxides, polymers, and biosystems. In many cases, this behavior was interpreted as the ample evidence for ferroelectric nature of the system. Here, we systematically analyze PFM responses on ferroelectric and nonferroelectric materials and demonstrate that mechanisms unrelated to ferroelectricity can induce ferroelectric-like characteristics through charge injection and electrostatic forces on the tip. We will focus on similarities and differences in various PFM measurement characteristics to provide an experimental guideline to differentiate between ferroelectric material properties and charge injection. In the end, we apply the developed measurement protocols to an unknown ferroelectric material.

摘要

在过去的几十年中,功能材料中的铁电性一直是现代科学中最引人入胜的领域之一。在过去的几年中,压电力显微镜(PFM)和光谱技术的快速发展揭示了在包括许多无机氧化物、聚合物和生物系统在内的各种材料中存在机电滞后环和偏置诱导的剩余极区。在许多情况下,这种行为被解释为系统铁电性的充分证据。在这里,我们系统地分析了铁电和非铁电材料的 PFM 响应,并证明与铁电性无关的机制可以通过针尖上的电荷注入和静电力诱导出类似铁电性的特性。我们将重点分析各种 PFM 测量特性的异同,为区分铁电材料性质和电荷注入提供实验指导。最后,我们将所开发的测量方案应用于未知的铁电材料。

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