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      Fourier synthesis of radiofrequency nanomechanical pulses with different shapes

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          NMR techniques for quantum control and computation

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            DIRECT PIEZOELECTRIC COUPLING TO SURFACE ELASTIC WAVES

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              Propagating phonons coupled to an artificial atom

              Quantum information can be stored in micromechanical resonators, encoded as quanta of vibration known as phonons. The vibrational motion is then restricted to the stationary eigenmodes of the resonator, which thus serves as local storage for phonons. In contrast, we couple propagating phonons to an artificial atom in the quantum regime and reproduce findings from quantum optics, with sound taking over the role of light. Our results highlight the similarities between phonons and photons but also point to new opportunities arising from the characteristic features of quantum mechanical sound. The low propagation speed of phonons should enable new dynamic schemes for processing quantum information, and the short wavelength allows regimes of atomic physics to be explored that cannot be reached in photonic systems.
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                Author and article information

                Journal
                Nature Nanotechnology
                Nature Nanotech
                Springer Science and Business Media LLC
                1748-3387
                1748-3395
                June 2015
                April 27 2015
                June 2015
                : 10
                : 6
                : 512-516
                Article
                10.1038/nnano.2015.72
                85d35f8f-0899-4fd3-a765-db5e96dbc306
                © 2015

                http://www.springer.com/tdm

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