Atomic Origins of Enhanced Ferroelectricity in Nanocolumnar PbTiO3/PbO Composite Thin Films

Author:

Li Mengsha12ORCID,Chen Pingfan13,Zhang Yingli45,Zhang Yuan45,Liu Zhenghao45,Tang Chunhua1,Chung Jing Yang1,Gu Mingqiang6,Li Junxue6,Huang Zhen378,Chow Gan Moog1,Li Changjian45ORCID,Pennycook Stephen J.1

Affiliation:

1. Department of Materials Science and Engineering National University of Singapore Singapore 117575 Singapore

2. Department of Materials Science and Engineering University of Toronto Toronto ON M5S 3E4 Canada

3. Information Materials and Intelligent Sensing Laboratory of Anhui Province Institutes of Physical Science and Information Technology Anhui University Hefei Anhui 230601 China

4. Department of Materials Science and Engineering Southern University of Science and Technology Shenzhen Guangdong 518055 China

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

6. Department of Physics Southern University of Science and Technology Shenzhen Guangdong 518055 China

7. NUSNNI‐Nanocore National University of Singapore Singapore 117411 Singapore

8. Stony Brook Institute at Anhui University Anhui University Hefei Anhui 230039 China

Abstract

AbstractNanocomposite films hold great promise for multifunctional devices by integrating different functionalities within a single film. The microstructure of the precipitate/secondary phase is an essential element in designing composites’ properties. The interphase strain between the matrix and secondary phase is responsible for strain‐mediated functionalities, such as magnetoelectric coupling and ferroelectricity. However, a quantitative microstructure‐dependent interphase strain characterization has been scarcely studied. Here, it is demonstrated that the PbTiO3(PTO)/PbO composite system can be prepared in nano‐spherical and nanocolumnar configurations by tuning the misfit strain, confirmed by a three‐dimensional reconstructive microscopy technique. With the atomic resolution quantitative microscopy with a depth resolution of a few nanometers, it is discovered that the strained region in PTO is much larger and more uniform in nanocolumnar compared to nano‐spherical composites, resulting in much enhanced ferroelectric properties. The interphase strain between PbO and PTO in the nanocolumnar structure leads to a giant c/a ratio of 1.20 (bulk value of 1.06), accompanied by a Ti polarization displacement of 0.48 Å and an effective ferroelectric polarization of 241.7 µC cm−2, three times compared to the bulk value. The quantitative atomic‐scale strain and polarization analysis on the interphase strain provides an important guideline for designing ferroelectric nanocomposites.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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