4.8 Article

Antiferromagnetic spintronics

Journal

REVIEWS OF MODERN PHYSICS
Volume 90, Issue 1, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/RevModPhys.90.015005

Keywords

-

Funding

  1. French National Agency for Research [ANR-15-CE24-0015-01]
  2. King Abdullah University of Science and Technology (KAUST) through the Office of Sponsored Research (OSR) [OSR-2015-CRG4-2626]
  3. C-SPIN, a Semiconductor Research Corporation program - MARCO
  4. DARPA
  5. NSF [DMR-1207577, DMR-1420451]
  6. Japan Society for the Promotion of Science KAKENHI [26870300, 15H05702]
  7. ARO [911NF-14-1-0016]
  8. French National Agency for Research [ANR-15-CE24-0015-01]
  9. King Abdullah University of Science and Technology (KAUST) through the Office of Sponsored Research (OSR) [OSR-2015-CRG4-2626]
  10. C-SPIN, a Semiconductor Research Corporation program - MARCO
  11. DARPA
  12. NSF [DMR-1207577, DMR-1420451]
  13. Japan Society for the Promotion of Science KAKENHI [26870300, 15H05702]
  14. ARO [911NF-14-1-0016]
  15. [26103002]
  16. Grants-in-Aid for Scientific Research [17H05181, 17H04924] Funding Source: KAKEN
  17. Agence Nationale de la Recherche (ANR) [ANR-15-CE24-0015] Funding Source: Agence Nationale de la Recherche (ANR)

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Antiferromagnetic materials could represent the future of spintronic applications thanks to the numerous interesting features they combine: they are robust against perturbation due to magnetic fields, produce no stray fields, display ultrafast dynamics, and are capable of generating large magnetotransport effects. Intense research efforts over the past decade have been invested in unraveling spin transport properties in antiferromagnetic materials. Whether spin transport can be used to drive the antiferromagnetic order and how subsequent variations can be detected are some of the thrilling challenges currently being addressed. Antiferromagnetic spintronics started out with studies on spin transfer and has undergone a definite revival in the last few years with the publication of pioneering articles on the use of spin-orbit interactions in antiferromagnets. This paradigm shift offers possibilities for radically new concepts for spin manipulation in electronics. Central to these endeavors are the need for predictive models, relevant disruptive materials, and new experimental designs. This paper reviews the most prominent spintronic effects described based on theoretical and experimental analysis of antiferromagnetic materials. It also details some of the remaining bottlenecks and suggests possible avenues for future research. This review covers both spin-transfer-related effects, such as spin-transfer torque, spin penetration length, domain-wall motion, and magnetization dynamics, and spin-orbit related phenomena, such as (tunnel) anisotropic magnetoresistance, spin Hall, and inverse spin galvanic effects. Effects related to spin caloritronics, such as the spin Seebeck effect, are linked to the transport of magnons in antiferromagnets. The propagation of spin waves and spin superfluids in antiferromagnets is also covered.

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