Dissipative generation of significant amount of photon-phonon asymmetric
steering in magnomechanical interfaces
- URL: http://arxiv.org/abs/2201.08965v1
- Date: Sat, 22 Jan 2022 05:29:02 GMT
- Title: Dissipative generation of significant amount of photon-phonon asymmetric
steering in magnomechanical interfaces
- Authors: Tian-Ang Zheng, Ye Zheng, Lei Wang, and Chang-Geng Liao
- Abstract summary: We propose an effective approach for generating significant amount of entanglement and asymmetric steering between photon and phonon in a cavity magnomechanical system.
In particular, strong two-way and one-way asymmetric quantum steering between the photon and phonon modes can be obtained with even equal dissipation.
- Score: 4.352482759052892
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We propose an effective approach for generating significant amount of
entanglement and asymmetric steering between photon and phonon in a cavity
magnomechanical system which consists of a microwave cavity and a yttrium iron
garnet sphere. By driving the magnon mode of the yttrium iron garnet sphere
with blue-detuned microwave field, the magnon mode can be acted as an
engineered resevoir cools the Bogoliubov modes of microwave cavity mode and
mechanical mode via beam-splitter-like interaction. In this way, the microwave
cavity mode and mechanical mode are driven to two-mode squeezed states in the
stationary limit. In particular, strong two-way and one-way asymmetric quantum
steering between the photon and phonon modes can be obtained with even equal
dissipation. It is very different from the conventional proposal of asymmetric
quantum steering, where additional unbalanced losses or noises on the two
subsystems has been imposed. Our finding may be significant to expand our
understanding of the essential physics of asymmetric steering and extend the
potential application of the cavity spintronics to device-independent quantum
key distribution.
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