Noncollinear Spintronics and Electric-Field Control: A Review
arXiv:2001.00321 · doi:10.1007/s12598-019-01352-w
Abstract
Our world is composed of various materials with different structures, where spin structures have been playing a pivotal role in spintronic devices of the contemporary information technology. Apart from conventional collinear spin materials such as collinear ferromagnets and collinear antiferromagnetically coupled materials, noncollinear spintronic materials have emerged as hot spots of research attention owing to exotic physical phenomena. In this Review, we firstly introduce two types noncollinear spin structures, i.e., the chiral spin structure that yields real-space Berry phases and the coplanar noncollinear spin structure that could generate momentum-space Berry phases, and then move to relevant novel physical phenomena including topological Hall effect, anomalous Hall effect, multiferroic, Weyl fermions, spin-polarized current, and spin Hall effect without spin-orbit coupling in these noncollinear spin systems. Afterwards, we summarize and elaborate the electric-field control of the noncollinear spin structure and related physical effects, which could enable ultralow power spintronic devices in future. In the final outlook part, we emphasize the importance and possible routes for experimentally detecting the intriguing theoretically predicted spin-polarized current, verifying the spin Hall effect in the absence of spin-orbit coupling and exploring the anisotropic magnetoresistance and domain-wall-related magnetoresistance effects for noncollinear antiferromagnetic materials.
34 pages, 20 figures, Review Article in Rare Metals
References in corpus (12)
- Spontaneous Skyrmion Ground States in Magnetic Metals
- Interface-driven topological Hall effect in SrRuO-SrIrO bilayer
- Topological Weyl semimetals in the chiral antiferromagnetic materials Mn3Ge and Mn3Sn
- Non-collinear Antiferromagnets and the Anomalous Hall Effect
- A Piezoelectric, Strain-Controlled Antiferromagnetic Memory Insensitive to Magnetic Fields
- Electric-field control of anomalous and topological Hall effects in oxide bilayer thin films
- Enhanced spin-orbit torque via modulation of spin current absorption
- Full Electroresistance Modulation in a Mixed-Phase Metallic Alloy
- Antiferromagnetic Piezospintronics
- Electron Accumulation and Emergent Magnetism in LaMnO3/SrTiO3 Heterostructures
- Integration of the Noncollinear Antiferromagnetic Metal Mn3Sn onto Ferroelectric Oxides for Electric-Field Control
- Tailoring the electronic properties of SrRuO3 films in SrRuO3/LaAlO3 superlattices
Cited by in corpus (6)
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- Type II multiferroic order in two-dimensional transition metal halides from first principles spin-spiral calculations
- Materials challenges for SrRuO3: from conventional to quantum electronics
- Negligible oxygen vacancies, low critical current density, electric-field modulation, in-plane anisotropic and high-field transport of a superconducting Nd0.8Sr0.2NiO2/SrTiO3 heterostructure
- A two-dimensional electron gas based on a 5s oxide with high room-temperature mobility and strain sensitivity
- Chiral magnetism, lattice dynamics, and anomalous Hall conductivity in the novel VAuN antiferromagnetic antiperovskite