Magnomechanical backaction corrections due to coupling to higher order
Walker modes and Kerr nonlinearities
- URL: http://arxiv.org/abs/2301.11920v4
- Date: Fri, 14 Apr 2023 14:58:44 GMT
- Title: Magnomechanical backaction corrections due to coupling to higher order
Walker modes and Kerr nonlinearities
- Authors: V. A. S. V. Bittencourt and C. A. Potts and Y. Huang and J. P. Davis
and S. Viola Kusminskiy
- Abstract summary: Radiation pressure-like coupling between magnons and phonons in magnets can modify the phonon frequency and decay rate.
Such effects have been recently observed by coupling the uniform magnon mode of a magnetic sphere (the Kittel mode) to a microwave cavity.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: The radiation pressure-like coupling between magnons and phonons in magnets
can modify the phonon frequency (magnomechanical spring effect) and decay rate
(magnomechanical decay) via dynamical backaction. Such effects have been
recently observed by coupling the uniform magnon mode of a magnetic sphere (the
Kittel mode) to a microwave cavity. In particular, the ability to evade
backaction effects was demonstrated [C.A. Potts et al., arXiv:2211.13766
[quant-ph] (2022)], a requisite for applications such as magnomechanical based
thermometry. However, deviations were observed from the predicted
magnomechanical decay rate within the standard theoretical model. In this work,
we account for these deviations by considering corrections due to (i) magnetic
Kerr nonlinearities and (ii) the coupling of phonons to additional magnon
modes. Provided that such additional modes couple weakly to the driven cavity,
our model yields a correction proportional to the average Kittel magnon mode
occupation. We focus our results on magnetic spheres, where we show that the
magnetostatic Walker modes couple to the relevant mechanical modes as
efficiently as the Kittel mode. Our model yields excellent agreement with the
experimental data.
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