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Enhanced superconductivity and mixed-dimensional behaviour in infinite-layer samarium nickelate thin films.

PubMed
Authors: Yang M, Wang H, Tang J, Luo J, Wu X, Xu W, Wang A, Wu Y, Mao R, Wang Z, Pei Z, Zhou G, Dong Z, Feng B, Shi L, Meng W, Xi C, Pi L, Lu Q, Okamoto J, Huang HY, Huang DJ, Huang H, Wang Q, Gao P, Chen Z, Li D

Year

2026

Paper ID

9986

Status

Peer-reviewed

Abstract Read

~2 min

Abstract Words

132

Citations

1

Abstract

Rare-earth infinite-layer nickelates are emerging unconventional superconductors, with materials synthesis largely limited to early lanthanide compounds. Here, we report phase-pure samarium-based nickelate thin films on (LaAlO)(SrTaAlO) (001) substrates, including the first demonstration of SmSrNiO. Co-doped compounds achieve a record-small c-axis parameter (3.26 Å) and superconducting transitions up to 32.5 K, revealing a clear correlation between decreasing c-axis parameter and increasing critical temperature across different rare-earth systems. Angle-dependent magnetoresistance shows a hybrid 2D/3D superconductivity with enhanced rare-earth 5d-Ni 3 d orbital coupling, confirmed by resonant inelastic X-ray scattering. In addition, increasing Eu concentration drives a shift toward 3D superconductivity, and Eu-containing samples exhibit distinctive negative magnetoresistance even in the superconducting state. These findings advocate clear materials design principles for higher transition temperatures and exotic physics in infinite-layer nickelate superconductors through structural engineering of the rare-earth site.

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  • Rare-earth infinite-layer nickelates are emerging unconventional superconductors, with materials synthesis largely limited to early lanthanide compounds.

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External citation index: OpenAlex citation signal • updated 2026-06-13 23:03:30

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