GdWN3 is a nitride perovskite

Author:

Smaha Rebecca  W.1ORCID,Mangum John S.1ORCID,Yadav Neha2ORCID,Rom Christopher L.1ORCID,Wieliczka Brian M.1ORCID,Julien Baptiste1ORCID,Treglia Andrew3ORCID,Perkins Craig L.1ORCID,Gorai Prashun124ORCID,Bauers Sage R.1ORCID,Zakutayev Andriy1ORCID

Affiliation:

1. National Renewable Energy Laboratory 1 , Golden, Colorado 80401, USA

2. Colorado School of Mines 2 , Golden, Colorado 80401, USA

3. Colorado State University 3 , Fort Collins, Colorado 80521, USA

4. Rensselaer Polytechnic Institute 4 , Troy, New York 12180, USA

Abstract

Nitride perovskites ABN3 are an emerging and highly underexplored class of materials that are of interest due to their intriguing calculated ferroelectric, optoelectronic, and other functional properties. Incorporating novel A-site cations is one strategy to tune and expand such properties; for example, Gd3+ is compelling due to its large magnetic moment, potentially leading to multiferroic behavior. However, the theoretically predicted ground state of GdWN3 was a non-perovskite monoclinic structure. Here, we experimentally show that GdWN3−y crystallizes in a perovskite structure. High-throughput combinatorial sputtering with activated nitrogen is employed to synthesize thin films of Gd2−xWxN3−yOy with oxygen content y < 0.05. Ex situ annealing crystallizes a polycrystalline perovskite phase in a narrow composition window near x = 1. LeBail fits of synchrotron grazing incidence wide angle x-ray scattering data are consistent with a perovskite ground-state structure. Refined density functional theory calculations that included antiferromagnetic configurations confirm that the ground-state structure of GdWN3 is a distorted Pnma perovskite with antiferromagnetic ordering, in contrast to prior predictions. Initial property measurements find that GdWN3−y is paramagnetic down to T = 2 K with antiferromagnetic correlations and that the absorption onset depends on cation stoichiometry. This work provides an important path toward both the rapid expansion of the emerging family of nitride perovskites and understanding their potential multiferroic properties.

Funder

National Renewable Energy Laboratory

Basic Energy Sciences

Publisher

AIP Publishing

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