Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Twisted magnetization phases in orbital-dominant rare-earth nitrides

View through CrossRef
<p>In this thesis we investigate the magnetic properties of NdN and SmN, members of the rare-earth nitrides, a series of intrinsic ferromagnetic semiconductors. In rare-earth systems, the strong spin-orbit coupling of the partially filled 4ƒ shell ensures that there is a substantial orbital contribution to the ferromagnetic moment, in contrast to many transition metal systems where the orbital moment is usually quenched. In SmN and NdN the orbital moment actually exceeds the spin moment, and the resulting orbital dominant magnetization allows for the fabrication of a magnetic heterostructures showing novel behavior.  We report a new theoretical study of the magnetic properties on both SmN and NdN by considering the atomic-like 4ƒ electrons. These calculations incorporate spin-orbit coupling, the exchange interaction in a self-consistent mean-field approach, and crystal field interactions in an arbitrary-multiplet point-charge model. Our findings show excellent agreement with the experimentally measured ferromagnetic moments of SmN and NdN, representing an advance from previous theoretical studies.  We also report an experimental study on SmN/GdN heterostructures using the element-resolved method of x-ray magnetic circular dichroism (XMCD) to probe the magnetism. The competition between the orbital-dominant Zeeman coupling in SmN and the ferromagnetic spin-based interface exchange with GdN, which has purely a spin moment, results in a twisted magnetization profile. The depth profile of the magnetization derived from XMCD measurements showed good agreement with an analytical model developed to describe the competing interactions.  In a second study, a superlattice of NdN/GdN was investigated via XMCD and standard magnetometry techniques. A twisted magnetization was shown to be present due to the same mechanism as in the SmN/GdN system. By varying the maximum applied field and temperature, twisted phases were shown to develop in both GdN and NdN layers. These twisted phases in orbital-dominant ferromagnetic semiconductors represent a departure from previously explored spin-dominant metallic systems displaying similar twisted phases.</p>
Victoria University of Wellington Library
Title: Twisted magnetization phases in orbital-dominant rare-earth nitrides
Description:
<p>In this thesis we investigate the magnetic properties of NdN and SmN, members of the rare-earth nitrides, a series of intrinsic ferromagnetic semiconductors.
In rare-earth systems, the strong spin-orbit coupling of the partially filled 4ƒ shell ensures that there is a substantial orbital contribution to the ferromagnetic moment, in contrast to many transition metal systems where the orbital moment is usually quenched.
In SmN and NdN the orbital moment actually exceeds the spin moment, and the resulting orbital dominant magnetization allows for the fabrication of a magnetic heterostructures showing novel behavior.
  We report a new theoretical study of the magnetic properties on both SmN and NdN by considering the atomic-like 4ƒ electrons.
These calculations incorporate spin-orbit coupling, the exchange interaction in a self-consistent mean-field approach, and crystal field interactions in an arbitrary-multiplet point-charge model.
Our findings show excellent agreement with the experimentally measured ferromagnetic moments of SmN and NdN, representing an advance from previous theoretical studies.
  We also report an experimental study on SmN/GdN heterostructures using the element-resolved method of x-ray magnetic circular dichroism (XMCD) to probe the magnetism.
The competition between the orbital-dominant Zeeman coupling in SmN and the ferromagnetic spin-based interface exchange with GdN, which has purely a spin moment, results in a twisted magnetization profile.
The depth profile of the magnetization derived from XMCD measurements showed good agreement with an analytical model developed to describe the competing interactions.
  In a second study, a superlattice of NdN/GdN was investigated via XMCD and standard magnetometry techniques.
A twisted magnetization was shown to be present due to the same mechanism as in the SmN/GdN system.
By varying the maximum applied field and temperature, twisted phases were shown to develop in both GdN and NdN layers.
These twisted phases in orbital-dominant ferromagnetic semiconductors represent a departure from previously explored spin-dominant metallic systems displaying similar twisted phases.
</p>.

Related Results

Hydatid Cyst of The Orbit: A Systematic Review with Meta-Data
Hydatid Cyst of The Orbit: A Systematic Review with Meta-Data
Abstarct Introduction Orbital hydatid cysts (HCs) constitute less than 1% of all cases of hydatidosis, yet their occurrence is often linked to severe visual complications. This stu...
Giant orbital magnetization in two-dimensional materials
Giant orbital magnetization in two-dimensional materials
Abstract Orbital magnetization typically plays a minor role in compounds where the magnetic properties are governed by transition metal elements. However, in some ca...
Towards a consistent thermal-orbital model for the Galilean satellites
Towards a consistent thermal-orbital model for the Galilean satellites
In the coming decade, the JUICE and Europa Clipper spacecraft will both visit Jupiter’s Galilean satellites, a joint exploration in great part motivated by the presence of subsurfa...
Unusual heavy rare earth elements enrichment and mineralization age in the Jialu deposit from the Qinling Orogen, central China
Unusual heavy rare earth elements enrichment and mineralization age in the Jialu deposit from the Qinling Orogen, central China
Carbonatite has enormous potential for rare earth element resources, typically enriched in light rare earth elements, and has attracted increasing attention from geologists and eco...
A new conceptual model to explain the mid-Pleistocene transition
A new conceptual model to explain the mid-Pleistocene transition
&lt;p&gt;Pleistocene climate is primarily driven by changes of the Earth&amp;#8217;s orbital parameters. However, the Mid-Pleistocene Transition (MPT) (~0.8-1.2Myr) whi...
Near-Earth stream decoherence revisited: the limits of orbital similarity
Near-Earth stream decoherence revisited: the limits of orbital similarity
Context. Orbital similarity measures, such as the D values, have been extensively used in meteor science to identify meteoroid streams and associate meteorite falls with near-Earth...
Graphene-coated three-twisted-taper and four-twisted-taper for highly sensitive temperature and strain sensing
Graphene-coated three-twisted-taper and four-twisted-taper for highly sensitive temperature and strain sensing
Fiber-optic sensor has emerged fast development and greatly applied in various fields. In this paper, by manually fire-drawing method of single mode fibers, we propose and fabricat...

Back to Top