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高通量扫描二次谐波产生显微镜用于极材料研究。

High-Throughput Scanning Second-Harmonic-Generation Microscopy for Polar Materials.

机构信息

Department of Materials Science and Engineering, Southern University of Science and Technology, Shenzhen, Guangdong, 518055, P. R. China.

Guangdong Provincial Key Laboratory of Functional Oxide Materials and Devices, Southern University of Science and Technology, Shenzhen, Guangdong, 518055, P. R. China.

出版信息

Adv Mater. 2023 May;35(19):e2300348. doi: 10.1002/adma.202300348. Epub 2023 Mar 27.

Abstract

The Materials Genome Initiative aims to discover, develop, manufacture, and deploy advanced materials at twice the speed of conventional approaches. To achieve this, high-throughput characterization is essential for the rapid screening of candidate materials. In this study, a high-throughput scanning second-harmonic-generation microscope with automatic partitioning, accurate positioning, and fast scanning is developed that can rapidly probe and screen polar materials. Using this technique, typical ferroelectrics, including periodically poled lithium niobate crystals and PbZr Ti O (PZT) thin films are first investigated, whereby the microscopic domain structures are clearly revealed. This technique is then applied to a compositional-gradient (100-x)%BaTiO -x%SrTiO film and a thickness-gradient PZT film to demonstrate its high-throughput capabilities. Since the second-harmonic-generation signal is correlated with the macroscopic remnant polarization over the probed region determined by the laser spot, it is free of artifacts arising from leakage current and electrostatic interference, while materials' symmetries and domain structures must be carefully considered in the data analysis. It is believed that this work can help promote the high-throughput development of polar materials and contribute to the Materials Genome Initiative.

摘要

材料基因组计划旨在以传统方法两倍的速度发现、开发、制造和部署先进材料。为了实现这一目标,高通量特性分析对于候选材料的快速筛选至关重要。在这项研究中,开发了一种具有自动分区、精确定位和快速扫描功能的高通量扫描二次谐波产生显微镜,可快速探测和筛选极性材料。使用该技术,首先研究了典型的铁电体,包括周期性极化的铌酸锂晶体和 PbZrTi O (PZT) 薄膜,从而清晰地揭示了微观畴结构。然后,该技术应用于组成梯度(100-x)%BaTiO-x%SrTiO 薄膜和厚度梯度 PZT 薄膜,以展示其高通量能力。由于二次谐波产生信号与通过激光光斑确定的探测区域的宏观剩余极化相关,因此它不受漏电流和静电干扰产生的伪影的影响,而在数据分析中必须仔细考虑材料的对称性和畴结构。相信这项工作有助于促进极性材料的高通量开发,并为材料基因组计划做出贡献。

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