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      Strong indirect coupling between graphene-based mechanical resonators via a phonon cavity

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          Electromechanical resonators from graphene sheets.

          Nanoelectromechanical systems were fabricated from single- and multilayer graphene sheets by mechanically exfoliating thin sheets from graphite over trenches in silicon oxide. Vibrations with fundamental resonant frequencies in the megahertz range are actuated either optically or electrically and detected optically by interferometry. We demonstrate room-temperature charge sensitivities down to 8 x 10(-4) electrons per root hertz. The thinnest resonator consists of a single suspended layer of atoms and represents the ultimate limit of two-dimensional nanoelectromechanical systems.
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            Coupling superconducting qubits via a cavity bus

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              Entangling mechanical motion with microwave fields.

              When two physical systems share the quantum property of entanglement, measurements of one system appear to determine the state of the other. This peculiar property is used in optical, atomic, and electrical systems in an effort to exceed classical bounds when processing information. We extended the domain of this quantum resource by entangling the motion of a macroscopic mechanical oscillator with a propagating electrical signal and by storing one half of the entangled state in the mechanical oscillator. This result demonstrates an essential requirement for using compact and low-loss micromechanical oscillators in a quantum processor, can be extended to sense forces beyond the standard quantum limit, and may enable tests of quantum theory.
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                Author and article information

                Journal
                Nature Communications
                Nat Commun
                Springer Nature
                2041-1723
                December 2018
                January 26 2018
                December 2018
                : 9
                : 1
                Article
                10.1038/s41467-018-02854-4
                29374169
                c01a07f1-87fa-4487-8b4f-c874f362c93d
                © 2018

                http://creativecommons.org/licenses/by/4.0

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