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Updated: Jun 11, 2026

Angle-resolved Photoemission Spectroscopy At Ultra-low Temperatures
Published on: October 9, 2012
Confinement-induced altermangetism in RuO2ultrathin films
Samy Brahimi1, Dibya Prakash2,3, Samir Lounis3,4
1Laboratoire de Physique et Chimie Quantique, Université Mouloud Mammeri de Tizi-Ouzou, 15000 Tizi-Ouzou, Algeria.
Abstract:
The magnetic properties of bulk RuO2remain a subject of active debate, despite its pivotal role in the emergence of altermagnetism. The latter is a novel paradigm in magnetic phases, characterized by the absence of net magnetization due to anti-parallel alignment of magnetic moments, yet displaying finite spin-splitting in the electronic band structure. This unique behavior unlocks opportunities for advanced applications in information technology devices. Recent experimental and theoretical investigations suggest that bulk RuO2, contrary to prior assumptions, is non-magnetic. In this work, we propose the fabrication of RuO2ultrathin films to robustly stabilize the altermagnetic phase. Unlike their bulk counterparts, ultrathin films up to about 2 nm thickness experience substantial strain relaxation, leading to a dramatic impact on the electronic structure that triggers a transition towards an altermagnetic behavior, which mimics the impact of an artificially applied Hubbard-Ucorrection to account for electronic correlations. Our results imply that the surface sensitiveness of the probing experimental techniques is essential to sense the altermagnetic behavior emerging at RuO2surfaces. Our findings promote the use and exploration of ultrathin films for the realization of spintronic devices based on altermagnets.
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