H01F1/0036

Reconfigurable waveguide for spin wave transmission

A waveguide for spin wave (SW) transmission, a method of fabricating a waveguide for SW transmission, and a method of transmitting an SW. The waveguide comprises a plurality of nanomagnetic material elements, each nanomagnetic material element having a respective predetermined geometric shape such that each nanomagnetic material element exhibits a deterministic ground state initializable by a magnetic field applied across the waveguide; wherein the nanomagnetic material elements are disposed relative to each other for dipolar coupling between adjacent nanomagnetic material elements.

MAGNETORESISTANCE EFFECT ELEMENT
20180254409 · 2018-09-06 · ·

A magnetoresistance effect element according to an aspect of the present disclosure includes a first ferromagnetic layer as a magnetization fixed layer including a ferromagnetic Heusler alloy, a second ferromagnetic layer as a magnetization free layer including a ferromagnetic Heusler alloy, and a nonmagnetic spacer layer provided between the first ferromagnetic layer and the second ferromagnetic layer, and the nonmagnetic spacer layer includes a nonmagnetic Fe group, Co group, or Ni group Heusler alloy.

MAGNETICALLY TUNABLE PHOTONIC CRYSTALS BASED ON ANISOTROPIC NANOSTRUCTURES

A method is disclosed of forming magnetically tunable photonic crystals comprising: synthesizing one or more precursory nanoparticles with anisotropic shapes; coating the one or more anisotropic precursory nanoparticles with silica to form composite structures; converting the one or more anisotropic precursory nanoparticles into magnetic nanomaterials through chemical reactions; and assembling the anisotropic magnetic nanoparticles into photonic crystals in a solvent.

ASYMMETRICAL MAGNET ARRAYS
20180047490 · 2018-02-15 · ·

Magnet array structure and method for forming magnet array structure that includes a first magnet array including a first repeatable magnet arrangement and second magnet array including a second repeatable magnet arrangement. The first repeatable magnet arrangement includes a plurality of non-uniformly dimensioned magnetic elements and the second repeatable magnet arrangement includes a plurality of non-uniformly dimensioned magnetic elements. Further, the first repeatable magnet arrangement is offset from the second repeatable magnet arrangement to limit attraction forces between the first and second magnet arrays.

GELS COMPRISING SUPRAMOLECULAR NANOTUBES OF SINGLE-CHAIN MAGNETS

The invention relates to a supramolecular nanotube comprising at least one single-chain magnet including a coordination polymer, said coordination polymer comprising at least one linear macromolecular chain comprising repeating units containing at least one metal, said metal being coordinated by at least one ligand comprising at least one linear carbon chain, said linear carbon chain comprising more than 5 carbons, preferably the linear carbon chain comprises 6 to 30 carbons.

RECONFIGURABLE WAVEGUIDE FOR SPIN WAVE TRANSMISSION
20170179561 · 2017-06-22 ·

A waveguide for spin wave (SW) transmission, a method of fabricating a waveguide for SW transmission, and a method of transmitting an SW. The waveguide comprises a plurality of nanomagnetic material elements, each nanomagnetic material element having a respective predetermined geometric shape such that each nanomagnetic material element exhibits a deterministic ground state initializable by a magnetic field applied across the waveguide; wherein the nanomagnetic material elements are disposed relative to each other for dipolar coupling between adjacent nanomagnetic material elements.

Magnetic microspheres for use in fluorescence-based applications
09645142 · 2017-05-09 · ·

Microspheres, populations of microspheres, and methods for forming microspheres are provided. One microsphere configured to exhibit fluorescent and magnetic properties includes a core microsphere and a magnetic material coupled to a surface of the core microsphere. About 50% or less of the surface of the core microsphere is covered by the magnetic material. The microsphere also includes a polymer layer surrounding the magnetic material and the core microsphere. One population of microspheres configured to exhibit fluorescent and magnetic properties includes two or more subsets of microspheres. The two or more subsets of microspheres are configured to exhibit different fluorescent and/or magnetic properties. Individual microspheres in the two or more subsets are configured as described above.

METHODS FOR PRODUCING NANOPARTICLES AND USING SAME

A method for producing nanocomposite particles is provided. The method comprises supplying an organic phase fluid an organic phase fluid, an aqueous phase fluid, an amphiphile, and a plurality of hydrophobic nanospecies to a nozzle. An electric field is generated proximate the nozzle such that the fluid exiting the nozzle forms a cone jet that disperses into a plurality of droplets. The plurality of droplets are collected, and nanocomposite particles comprising a self-assembled structure encapsulating at least one hydrophobic nanospecies form by self-assembly.

METHOD FOR PRODUCING NANOPARTICLES AND THE NANOPARTICLES PRODUCED THEREFROM

Disclosed herein is a method comprising disposing a container containing a metal and/or ferromagnetic solid and abrasive particles in a static magnetic field; where the container is surrounded by an induction coil; activating the induction coil with an electrical current, to heat up the metallic or ferromagnetic solid to form a fluid; generating sonic energy to produce acoustic cavitation and abrasion between the abrasive particles and the container; and producing nanoparticles that comprise elements from the container, the metal and/or the ferromagnetic solid and the abrasive particles. Disclosed herein too is a composition comprising first metal or a first ceramic; and particles comprising carbides and/or nitrides dispersed therein. Disclosed herein too is a composition comprising nanoparticles comprising chromium carbide, iron carbide, nickel carbide, y.-Fe and magnesium nitride.

Methods for producing nanoparticles and using same

A method for producing nanocomposite particles is provided. The method comprises supplying an organic phase fluid an organic phase fluid, an aqueous phase fluid, an amphiphile, and a plurality of hydrophobic nanospecies to a nozzle. An electric field is generated proximate the nozzle such that the fluid exiting the nozzle forms a cone jet that disperses into a plurality of droplets. The plurality of droplets are collected, and nanocomposite particles comprising a self-assembled structure encapsulating at least one hydrophobic nanospecies form by self-assembly.