Structural relaxation and domain formation in anisotropically strained La0.7Sr0.3MnO3/LaFeO3 superlattices on DyScO3(101)

Y Yu Liu T Thea Marie Dale E Emma van der Minne S Susanne Boucher R Romar Avila C Christoph Klewe (Materials Sciences Division, Lawrence Berkeley National Laboratory) G Gertjan Koster M Magnus Nord M Mari-Ann Einarsrud I Ingrid Hallsteinsen

Abstract

Abstract Anisotropic strain engineering in epitaxial oxide films provides new opportunities to control the antiferromagnetic and structural properties crucial for advancements of antiferromagnetic spintronics. Here we report on a (La 0.7 Sr 0.3 MnO 3 /LaFeO 3 ) 4 superlattice grown on (101) o DyScO 3 substrate which imposes significant anisotropic in-plane strain. Reciprocal space mapping reveals selective strain relaxation along the tensile in-plane [010] o axis, while compression along the perpendicular in-plane [ $$\:\stackrel{-}{1}01$$ ] o axis remains strained. Scanning precession electron diffraction and higher-order Laue zone analysis show that the relaxation is accommodated by structural domain formation in the LaFeO 3 layers, initiating from the second bilayer and propagating out-of-plane. These domains minimise structural defects and correlate with the substrate step edges. X-ray magnetic dichroism measurements reveal bulk-like in-plane antiferromagnetic order with polydomain signature as previously reported. Our findings reveal the presence of structural domains coexisting with antiferromagnetic polydomain states, showing a strain-domain-magnetism relationship that provides insights for applications of strain engineering in spintronics applications.

Article Details

Volume / Issue Vol. 16, Issue 1
Published January 13, 2026
ISSN 2045-2322
Publisher Nature Portfolio

Journal Info

Scientific Reports

Nature Portfolio

ISSN: 2045-2322 Open Access Life Sciences

Authors (10)

Y

Yu Liu

T

Thea Marie Dale

E

Emma van der Minne

S

Susanne Boucher

R

Romar Avila

C

Christoph Klewe

Materials Sciences Division, Lawrence Berkeley National Laboratory

G

Gertjan Koster

M

Magnus Nord

M

Mari-Ann Einarsrud

I

Ingrid Hallsteinsen