• DocumentCode
    39159
  • Title

    Decoherence, Mode Hopping, and Mode Coupling in Spin Torque Oscillators

  • Author

    Heinonen, O.G. ; Muduli, P.K. ; Iacocca, E. ; Akerman, J.

  • Author_Institution
    Mater. Sci. Div., Argonne Nat. Lab., Lemont, IL, USA
  • Volume
    49
  • Issue
    7
  • fYear
    2013
  • fDate
    Jul-13
  • Firstpage
    4398
  • Lastpage
    4404
  • Abstract
    Spin torque oscillators (STOs) often exhibit multiple modes, leading to complex behavior. One example is mode hopping between different eigenmodes of a magnetic tunnel junction (MTJ) STO. This mode hopping is a strong function of current and angle between the magnetization in the free and fixed layers, and away from anti-parallel configuration, mode hopping can be the dominant decoherence process. Another example is the linewidth of a nanocontact STO that can be a complex non-monotonic function of temperature in regions where two or more modes are excited by the oscillators. These phenomena require a generalization of the single-mode nonlinear STO theory to include mode coupling. We derive equations describing the slow time evolution of the coupled system and show they describe a dynamically driven system, similar to other systems that exhibit mode hopping in the presence of thermal fluctuations. In our description, mode coupling also leads to additional coupling between power and phase fluctuations, which can in certain limited cases lead to longer relaxation times for power fluctuations, and consequently to larger linewidths through the nonlinear frequency shift.
  • Keywords
    eigenvalues and eigenfunctions; magnetic tunnelling; magnetisation; spin fluctuations; spin polarised transport; MTJ; complex nonmonotonic function; decoherence process; eigenmodes; magnetic tunnel junction; magnetization; mode coupling; mode hopping; multiple modes; nanocontact STO; phase fluctuations; power fluctuations; single-mode nonlinear STO theory; spin torque oscillators; thermal fluctuations; Coherence; Couplings; Equations; Magnetization; Oscillators; Temperature measurement; Time-frequency analysis; Magnetoresistive devices; microwave oscillators; spin polarized transport; spin valves; tunneling magnetoresistance;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/TMAG.2013.2242866
  • Filename
    6559008