An Emergent Quadruple Phase Ensemble in Doped Bismuth Ferrite Thin Films Through Site and Strain Engineering

Author:

Zhou Jinling12ORCID,Huang Hsin‐Hui3,Kobayashi Shunsuke3,Yasui Shintaro45,Wang Ke6,Eliseev Eugene A.7,Morozovska Anna N.8,Yu Pu2,Takeuchi Ichiro9,Hong Zijian10,Sando Daniel111,Zhang Qi112ORCID,Valanoor Nagarajan1

Affiliation:

1. School of Materials Science and Engineering University of New South Wales Sydney Kensington NSW 2052 Australia

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

3. Nanostructures Research Laboratory Japan Fine Ceramics Center 2‐4‐1 Mutsuno, Atsuta‐ku Nagoya 456‐8587 Japan

4. Laboratory for Zero‐Carbon Energy Tokyo Institute of Technology Tokyo 152‐8550 Japan

5. Laboratory for Materials and Structures Tokyo Institute of Technology Yokohama 226‐8503 Japan

6. State Key Laboratory of New Ceramics and Fine Processing School of Materials Science and Engineering Tsinghua University Beijing 100084 China

7. Institute for Problems in Materials Science National Academy of Sciences of Ukraine Omeliana Pritsaka Kyiv 03142 Ukraine

8. Institute of Physics National Academy of Sciences of Ukraine 46, pr. Nauky Kyiv 03028 Ukraine

9. Department of Materials Science and Engineering University of Maryland College Park MD 20742 USA

10. School of Materials Science and Engineering Zhejiang University Hangzhou Zhejiang 310027 China

11. School of Physical and Chemical Sciences University of Canterbury Christchurch 8140 New Zealand

12. CSIRO, Manufacturing Lindfield NSW 2070 Australia

Abstract

AbstractIn ferroic materials, giant susceptibilities can be realized at artificially constructed phase boundaries through deterministic manipulation of the order parameter. Here, emergent ferroelectric structural phase evolution behavior is demonstrated through a synergistic combination of A‐site doping and strain engineering. Using chemical solution deposition derived (001)‐oriented Sm‐substituted bismuth ferrite (Bi1‐xSmxFeO3) films as a prototypical system, a morphotropic phase boundary comprising a coexistence of four distinct crystallographic phases is uncovered. These ferroelectric, polar, and nonpolar phases form a nanoscale mixture without the presence of crystallographically hard boundaries. The system thus possesses the ability to show both polarization rotation and extension, effectively releasing the polarization from its crystallographic constraint. Consequently, both robust ferroelectric properties and giant electromechanical responses are obtained. For instance, the optimized composition with x = 0.14 has a remnant polarization of 2Pr = 103 µC cm−2 and electromechanical response 175% that of undoped BFO. These findings showcase the tremendous potential of synthetic phase boundaries, particularly in the context of lead‐free functional multiferroics.

Funder

Australian National Fabrication Facility

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

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