Strain-Induced Structural Phase Transitions in Epitaxial (001) BiCoO3 Films: A First-Principles Study

Author:

Tian Hao1ORCID,Cui Shuqi2,Fu Long1,Zhang Hongwei1,Li Chenggang1,Cui Yingqi1ORCID,Mao Aijie3

Affiliation:

1. School of Physics and Electronic Engineering, Zhengzhou Normal University, Zhengzhou 450044, China

2. School of General Education, Wuchang University of Technology, Wuhan 430223, China

3. Institute of Atomic and Molecular Physics, Sichuan University, Chengdu 610065, China

Abstract

We have simulated BiCoO3 films epitaxially grown along (001) direction with density functional theory computations. Leading candidates for the lowest-energy phases have been identified. The tensile strains induce magnetic phase transition in the ground state (P4mm symmetry) from a C-type antiferromagnetic order to a G-type order for the in-plane lattice parameter above 3.922 Å. The G-type antiferromagnetic order will be maintained with larger tensile strains; however, a continuous structural phase transition will occur, combining the ferroelectric and antiferrodistortive modes. In particular, the larger tensile strain allows an isostructural transition, the so-called Cowley’s ‘‘Type Zero’’ phase transitions, from Cc-(I) to Cc-(II), with a slight volume collapse. The orientation of ferroelectric polarization changes from the out-of-plane direction in the P4mm to the in-plane direction in the Pmc21 state under epitaxial tensile strain; meanwhile, the magnetic ordering temperature TN can be strikingly affected by the variation of misfit strain.

Funder

National Natural Science Foundation of China

Zhengzhou Normal University Young Backbone Teacher Training Project

China Postdoctoral Science Foundation

Jiangsu Planned Projects for Postdoctoral Research Funds

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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