4.6 Article

Strong influence of nonmagnetic ligands on the momentum-dependent spin splitting in antiferromagnets

Related references

Note: Only part of the references are listed.
Article Materials Science, Multidisciplinary

Prediction of low-Z collinear and noncollinear antiferromagnetic compounds having momentum-dependent spin splitting even without spin-orbit coupling

Lin-Ding Yuan et al.

Summary: This study elucidates the spin splitting induced by antiferromagnets (AFM) that does not rely on symmetry breaking or spin-orbit coupling (SOC), providing a broader material base for spin manipulation.

PHYSICAL REVIEW MATERIALS (2021)

Article Physics, Multidisciplinary

Efficient Electrical Spin Splitter Based on Nonrelativistic Collinear Antiferromagnetism

Rafael Gonzalez-Hernandez et al.

Summary: Through ab initio calculations, it was discovered that the metallic collinear antiferromagnet RuO2 can efficiently generate spin current at room temperature, with a 34 degrees propagation angle between spin-up and spin-down currents. The corresponding spin conductivity is three times larger than the highest value found in a survey of 20,000 nonmagnetic spin-Hall materials. A versatile spin-splitter-torque concept is proposed to overcome limitations in current magnetic memory devices.

PHYSICAL REVIEW LETTERS (2021)

Article Materials Science, Multidisciplinary

Perovskite as a spin current generator

Makoto Naka et al.

Summary: The study demonstrates that materials with perovskite-type crystal structures can generate spin currents, based on spin-split band structures in certain kinds of collinear antiferromagnetic states. The phenomenon originates from a cooperative effect of spatially anisotropic electron transfer integrals due to GdFeO3-type lattice distortion, which is induced by the collinear spin configuration.

PHYSICAL REVIEW B (2021)

Article Physics, Applied

Crystal Hall and crystal magneto-optical effect in thin films of SrRuO3

Kartik Samanta et al.

JOURNAL OF APPLIED PHYSICS (2020)

Article Multidisciplinary Sciences

Crystal time-reversal symmetry breaking and spontaneous Hall effect in collinear antiferromagnets

Libor Smejkal et al.

SCIENCE ADVANCES (2020)

Article Materials Science, Multidisciplinary

Spontaneous antisymmetric spin splitting in noncollinear antiferromagnets without spin-orbit coupling

Satoru Hayami et al.

PHYSICAL REVIEW B (2020)

Article Materials Science, Multidisciplinary

Giant momentum-dependent spin splitting in centrosymmetric low-Z antiferromagnets

Lin-Ding Yuan et al.

PHYSICAL REVIEW B (2020)

Article Multidisciplinary Sciences

Spin current generation in organic antiferromagnets

Makoto Naka et al.

NATURE COMMUNICATIONS (2019)

Article Materials Science, Multidisciplinary

Antiferromagnetism in RuO2 as d-wave Pomeranchuk instability

Kyo-Hoon Ahn et al.

PHYSICAL REVIEW B (2019)

Article Physics, Multidisciplinary

Focus on the Rashba effect

G. Bihlmayer et al.

NEW JOURNAL OF PHYSICS (2015)

Article Materials Science, Multidisciplinary

Topological magnetic crystalline insulators and corepresentation theory

Rui-Xing Zhang et al.

PHYSICAL REVIEW B (2015)

Article Chemistry, Multidisciplinary

Electric Control of Magnetization and Interplay between Orbital Ordering and Ferroelectricity in a Multiferroic Metal-Organic Framework

Alessandro Stroppa et al.

ANGEWANDTE CHEMIE-INTERNATIONAL EDITION (2011)

Article Materials Science, Multidisciplinary

The present and the future of spintronics

Albert Fert

THIN SOLID FILMS (2008)

Article Physics, Condensed Matter

Magnetic structures of the metal monoxides NiO and CoO re-investigated by spherical neutron polarimetry

Eric Ressouche et al.

PHYSICA B-CONDENSED MATTER (2006)

Article Materials Science, Multidisciplinary

Linear response approach to the calculation of the effective interaction parameters in the LDA+U method

M Cococcioni et al.

PHYSICAL REVIEW B (2005)

Review Physics, Multidisciplinary

Spintronics: Fundamentals and applications

I Zutic et al.

REVIEWS OF MODERN PHYSICS (2004)

Review Multidisciplinary Sciences

Spintronics:: A spin-based electronics vision for the future

SA Wolf et al.

SCIENCE (2001)