Epitaxy of hexagonal ABO3 quantum materials

Author:

Nordlander Johanna1ORCID,Anderson Margaret A.1ORCID,Brooks Charles M.1ORCID,Holtz Megan E.2,Mundy Julia A.1ORCID

Affiliation:

1. Department of Physics, Harvard University, Cambridge, Massachusetts 02138, USA

2. Department of Metallurgy and Materials Engineering, Colorado School of Mines, Golden, Colorado 80401, USA

Abstract

Hexagonal ABO3 oxides ( A, B = cation) are a class of rich materials for realizing novel quantum phenomena. Their hexagonal symmetry, oxygen trigonal bipyramid coordination, and quasi-two dimensional layering give rise to properties distinct from those of the cubic ABO3 perovskites. As bulk materials, most of the focus in this class of materials has been on the rare-earth manganites, RMnO3 ( R = rare earth); these materials display coupled ferroelectricity and antiferromagnetic order. In this review, we focus on the thin-film manifestations of the hexagonal ABO3 oxides. We cover the stability of the hexagonal oxides and substrates which can be used to template the hexagonal structure. We show how the thin-film geometry not only allows for further tuning of the bulk-stable manganites but also allows for the realization of metastable hexagonal oxides such as the RFeO3 that combine ferroelectricity with weak ferromagnetic order. The thin-film geometry is a promising platform to stabilize additional metastable hexagonal oxides to search for predicted high-temperature superconductivity and topological phases in this class of materials.

Publisher

AIP Publishing

Subject

General Physics and Astronomy

Cited by 6 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Multiferroicity in Ga-substituted LuFeO3 : A first-principles study;Physical Review Materials;2023-11-16

2. Epitaxial conducting ABO3 perovskite oxide thin films;Journal of Applied Physics;2023-06-22

3. Frustrated Magnetism and Ferroelectricity in a Dy3+-Based Triangular Lattice;Crystals;2023-06-19

4. Functional Heterointerfaces of Quantum Materials by Design;physica status solidi (RRL) – Rapid Research Letters;2023-06

5. Origin of the Critical Thickness in Improper Ferroelectric Thin Films;ACS Applied Materials & Interfaces;2023-03-30

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