Applied spintronics: From spin transport to spin-charge interconversion and emerging devices

Spintronics exploits the electron’s spin degree of freedom to go beyond the capabilities of conventional charge-based electronics. Since the discovery of giant magnetoresistance, the field has evolved from the study of spin-polarized transport in ferromagnets to a broader framework encompassing spin-orbit coupling, collective spin dynamics, and electric-field control of magnetic states. In this Review, we discuss the physical mechanisms that underpin modern applied spintronics, with particular emphasis on spin-charge interconversion, magnetoresistive effects, and the electrical detection and manipulation of collective spin phenomena. We examine how spin currents, spin-orbit torques, and voltage-controlled magnetic properties enable efficient control of magnetization and magnetic excitations in nanoscale devices. These mechanisms form the basis of key technologies such as magnetic sensors and magnetic random-access memory (MRAM) while also opening pathways toward emerging architectures including racetrack memories, spin-based logic, and unconventional computing. By highlighting common principles across materials platforms and device concepts, we provide a perspective on the current state of spintronics and outline promising directions for future spin-based electronics.

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Publication Details

Journal
Science Advances
Published
2026-09-16
DOI
https://doi.org/10.1126/sciadv.aeh2967
Primary Topic
Magnetic properties of thin films
Type
article
Field-Weighted Citation Impact
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Applied spintronics: From spin transport to spin-charge interconversion and emerging devices

Jairo Sinova, Olena Gomonay, Manuel Bibès, Mathias Weiler et al.
Science Advances
Magnetic properties of thin films
article

Applied spintronics: From spin transport to spin-charge interconversion and emerging devices

Jairo Sinova, Olena Gomonay, Manuel Bibès, Mathias Weiler, Mathias Kläui, Timo Kuschel, Shunsuke Fukami
article en

Abstract

Spintronics exploits the electron’s spin degree of freedom to go beyond the capabilities of conventional charge-based electronics. Since the discovery of giant magnetoresistance, the field has evolved from the study of spin-polarized transport in ferromagnets to a broader framework encompassing spin-orbit coupling, collective spin dynamics, and electric-field control of magnetic states. In this Review, we discuss the physical mechanisms that underpin modern applied spintronics, with particular emphasis on spin-charge interconversion, magnetoresistive effects, and the electrical detection and manipulation of collective spin phenomena. We examine how spin currents, spin-orbit torques, and voltage-controlled magnetic properties enable efficient control of magnetization and magnetic excitations in nanoscale devices. These mechanisms form the basis of key technologies such as magnetic sensors and magnetic random-access memory (MRAM) while also opening pathways toward emerging architectures including racetrack memories, spin-based logic, and unconventional computing. By highlighting common principles across materials platforms and device concepts, we provide a perspective on the current state of spintronics and outline promising directions for future spin-based electronics.

Science AdvancesVol. 12(38)
Tohoku Institute of Technology (JP), Centre National de la Recherche Scientifique (FR), University of Kaiserslautern (DE), Johannes Gutenberg University Mainz (DE), Tohoku University (JP), Norwegian University of Science and Technology (NO), Université Paris-Saclay (FR), Laboratoire Albert Fert (FR)
Openalex Percentile: Top 13%
Magnetic properties of thin films
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