Magnetization States and Coupled Spin-Wave Modes in Concentric Double Nanorings.

Bushra Hussain, Michael G Cottam
Author Information
  1. Bushra Hussain: Department of Natural Sciences, University of Michigan, Dearborn, MI 48197, USA. ORCID
  2. Michael G Cottam: Department of Physics and Astronomy, University of Western Ontario, London, ON N6A 3K7, Canada. ORCID

Abstract

Concentric multiple nanorings have previously been fabricated and investigated mainly for their different static magnetization states. Here, we present a theoretical analysis for the magnetization dynamics in double nanorings arranged concentrically, where there is coupling across a nonmagnetic spacer due to the long-range dipole-dipole interactions. We employ a microscopic, or Hamiltonian-based, formalism to study the discrete spin waves that exist in the magnetic states where the individual rings may be in either a vortex or an onion state. Numerical results are shown for the frequencies and the spatial amplitudes (with relative phase included) of the spin-wave modes. Cases are considered in which the magnetic materials of the rings are the same (taken to be permalloy) or two different materials such as permalloy and cobalt. The dependence of these properties on the mean radial position of the spacer were studied, showing, in most cases, the existence of two distinct transition fields. The special cases, where the radial spacer width becomes very small (less than 1 nm) were analyzed to study direct interfaces between dissimilar materials and/or effects of interfacial exchange interactions such as Ruderman-Kittel-Kasuya-Yoshida coupling. These spin-wave properties may be of importance for magnetic switching devices and sensors.

Keywords

References

  1. Sci Rep. 2017 Nov 1;7(1):14843 [PMID: 29093500]
  2. Nanomaterials (Basel). 2017 Aug 29;7(9): [PMID: 28850089]
  3. Adv Mater. 2015 Mar 18;27(11):1939-44 [PMID: 25655680]
  4. Phys Rev Lett. 2006 Dec 15;97(24):247203 [PMID: 17280314]
  5. Phys Rev Lett. 2006 Apr 28;96(16):167207 [PMID: 16712271]
  6. Nano Lett. 2008 Sep;8(9):2975-81 [PMID: 18687011]
  7. Nanotechnology. 2020 Apr 3;31(14):145714 [PMID: 31887729]
  8. Phys Rev Lett. 2005 Apr 8;94(13):137208 [PMID: 15904029]
  9. ACS Nano. 2012 May 22;6(5):3712-7 [PMID: 22533663]
  10. Phys Rev Lett. 2006 Feb 10;96(5):057207 [PMID: 16486978]
  11. Phys Rev Lett. 2010 Apr 2;104(13):137203 [PMID: 20481909]
  12. J Appl Phys. 2017 May 28;121(20):203901 [PMID: 28579634]
  13. Phys Rev Lett. 2007 Nov 16;99(20):207202 [PMID: 18233183]
  14. Phys Rev Lett. 2005 Jul 8;95(2):026601 [PMID: 16090707]
  15. Sci Rep. 2016 Sep 02;6:32592 [PMID: 27586260]
  16. Phys Rev Lett. 2001 Feb 5;86(6):1098-101 [PMID: 11178019]

Grants

  1. RGPIN-2017-04429/Natural Sciences and Engineering Research Council

Word Cloud

Created with Highcharts 10.0.0nanoringsspacerinteractionsmagneticmaterialsConcentricdifferentmagnetizationstatesdoublecouplingstudyspinwavesringsmayspin-wavemodespermalloytwopropertiesradialcasesmultiplepreviouslyfabricatedinvestigatedmainlystaticpresenttheoreticalanalysisdynamicsarrangedconcentricallyacrossnonmagneticduelong-rangedipole-dipoleemploymicroscopicHamiltonian-basedformalismdiscreteexistindividualeithervortexonionstateNumericalresultsshownfrequenciesspatialamplitudesrelativephaseincludedCasesconsideredtakencobaltdependencemeanpositionstudiedshowingexistencedistincttransitionfieldsspecialwidthbecomessmallless1nmanalyzeddirectinterfacesdissimilarand/oreffectsinterfacialexchangeRuderman-Kittel-Kasuya-YoshidaimportanceswitchingdevicessensorsMagnetizationStatesCoupledSpin-WaveModesDoubleNanoringsconcentricdipole-exchangedipole–dipoleferromagnetic

Similar Articles

Cited By