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Mechanical frequency control in inductively coupled electromechanical systems

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arxiv 2104.10577 v1 pith:ZA4O4BS6 submitted 2021-04-21 quant-ph

Mechanical frequency control in inductively coupled electromechanical systems

classification quant-ph
keywords mechanicalfieldfrequencymagneticnano-electromechanicalsquidbiascontributing
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Nano-electromechanical systems implement the opto-mechanical interaction combining electromagnetic circuits and mechanical elements. We investigate an inductively coupled nano-electromechanical system, where a superconducting quantum interference device (SQUID) realizes the coupling. We show that the resonance frequency of the mechanically compliant string embedded into the SQUID loop can be controlled in two different ways: (i) the bias magnetic flux applied perpendicular to the SQUID loop, (ii) the magnitude of the in-plane bias magnetic field contributing to the nano-electromechanical coupling. These findings are quantitatively explained by the inductive interaction contributing to the effective spring constant of the mechanical resonator. In addition, we observe a residual field dependent shift of the mechanical resonance frequency, which we attribute to the finite flux pinning of vortices trapped in the magnetic field biased nanostring.

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