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Updated: Aug 23, 2026

Growth and Electrostatic/chemical Properties of Metal/LaAlO3/SrTiO3 Heterostructures
Published on: February 8, 2018
Coexistence and Tunability of Orbital and Spin Hall Effects in RuO_{2}
Lishu Zhang1, Mahmoud Zeer2, Dongwook Go3,4
1Shandong University, Key Laboratory for Liquid-Solid Structural Evolution and Processing of Materials, Ministry of Education, Jinan 250061, China.
Abstract:
Altermagnetic materials, especially RuO_{2}, have recently attracted considerable attention for their unique magnetic properties and energy-efficient spintronic applications. However, recent experimental studies have reported highly conflicting signatures regarding altermagnetic spin splitting and charge-spin interconversion (CSI) in RuO_{2}. While some experiments link efficient CSI to nonrelativistic altermagnetic spin-splitting effects, others observe large CSI signals in non-spin-splitting RuO_{2}, which are instead explained by relativistic inverse spin Hall effects. In this Letter, based on first-principles calculations, we reveal that these controversial experimental results originate from a phase-dependent coexistence and relative dominance of the orbital Hall effect (OHE) and spin Hall effect (SHE) in RuO_{2}. We systematically investigate the OHE and SHE in both altermagnetic and nonmagnetic phases of RuO_{2}. Our results show that the altermagnetic state hosts a giant OHE that exceeds the SHE by 2 orders of magnitude and carries an opposite sign. This dominant OHE can generate experimentally observed "SHE-like" voltages through orbital-to-spin conversion, explaining previously reported altermagnetic CSI signals. In contrast, OHE of nonmagnetic RuO_{2} is suppressed and a large relativistic SHE emerges, in agreement with recent angle-resolved photoemission and spin-pumping experiments. Finally, we demonstrate that the coexistence of OHE and SHE is tunable via chemical doping, enabling on-demand modulation of CSI in RuO_{2}. Our work provides a new physical mechanism for understanding CSI in RuO_{2} and highlights the central role of orbital transport.
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