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The following article is Open access

Parametric coupling between macroscopic quantum resonators

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Published 11 November 2008 Published under licence by IOP Publishing Ltd
, , Focus on Mechanical Systems at the Quantum Limit Citation L Tian et al 2008 New J. Phys. 10 115001 DOI 10.1088/1367-2630/10/11/115001

1367-2630/10/11/115001

Abstract

Time-dependent linear coupling between macroscopic quantum resonator modes generates both a parametric amplification also known as a 'squeezing operation' and a beam splitter operation, analogous to quantum optical systems. These operations, when applied properly, can robustly generate entanglement and squeezing for the quantum resonator modes. Here, we present such coupling schemes between a nanomechanical resonator and a superconducting electrical resonator using applied microwave voltages as well as between two superconducting lumped-element electrical resonators using a rf SQUID-mediated tunable coupler. By calculating the logarithmic negativity of the partially transposed density matrix, we quantitatively study the entanglement generated at finite temperatures. We also show that characterization of the nanomechanical resonator state after the quantum operations can be achieved by detecting the electrical resonator only. Thus, one of the electrical resonator modes can act as a probe to measure the entanglement of the coupled systems and the degree of squeezing for the other resonator mode.

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10.1088/1367-2630/10/11/115001