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Driving magnetization dynamics in an on-demand magnonic crystal by magneto-elastic interaction

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arxiv 1902.09186 v1 pith:SDBT252J submitted 2019-02-25 cond-mat.mes-hall

Driving magnetization dynamics in an on-demand magnonic crystal by magneto-elastic interaction

classification cond-mat.mes-hall
keywords excitationspatialmagnetizationwavescrystaldistributionelasticinteraction
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Using spatial light interference of ultrafast laser pulses, we generate a lateral modulation in the magnetization profile of an otherwise uniformly magnetized film, whose magnetic excitation spectrum is monitored via the coherent and resonant interaction with elastic waves. We find an unusual dependence of the magnetoelastic coupling as the externally applied magnetic field is angle- and field-tuned relative to the wave vector of the magnetization modulation, which can be explained by the emergence of spatially inhomogeneous spin-wave modes. In this regard, the spatial light interference methodology can be seen as a user-configurable, temporally windowed, on-demand magnonic crystal, potentially of arbitrary two-dimensional shape, which allows control and selectivity of the spatial distribution of spin waves. Calculations of spin waves using a variety of methods, demonstrated here using the plane-wave method and micromagnetic simulation, can identify the spatial distribution and associated energy scales of each excitation, which opens the door to a number of excitation methodologies beyond our chosen elastic wave excitation.

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