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Control of microwave signals using circuit nano-electromechanics

2012/06/27 by Xiaoqing Zhou, Fredrik Hocke, Albert Schliesser +4 · 1 citation
Physics and Astronomy · #cond-mat.mes-hall #physics.optics #quant-ph

paper · pdf · doi:10.1038/nphys2527

published as Nature Physics (2013) · 9 figures

arxiv created 2012/06/27 · arxiv updated 2013/01/22

Abstract

Waveguide resonators are crucial elements in sensitive astrophysical detectors [1] and circuit quantum electrodynamics (cQED) [2]. Coupled to artificial atoms in the form of superconducting qubits [3, 4], they now provide a technologically promising and scalable platform for quantum information processing tasks [2, 5-8]. Coupling these circuits, in situ, to other quantum systems, such as molecules [9, 10], spin ensembles [11, 12], quantum dots [13] or mechanical oscillators [14, 15] has been explored to realize hybrid systems with extended functionality. Here, we couple a superconducting coplanar waveguide resonator to a nano-coshmechanical oscillator, and demonstrate all-microwave field controlled slowing, advancing and switching of microwave signals. This is enabled by utilizing electromechanically induced transparency [16-18], an effect analogous to electromagnetically induced transparency (EIT) in atomic physics [19]. The exquisite temporal control gained over this phenomenon provides a route towards realizing advanced protocols for storage of both classical and quantum microwave signals [20-22], extending the toolbox of control techniques of the microwave field.

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