Quantum teleportation from light beams to vibrational states of a macroscopic diamond
arXiv:1607.05367 · doi:10.1038/ncomms11736
Abstract
With the recent development of optomechanics, the vibration in solids, involving collective motion of trillions of atoms, gradually enters into the realm of quantum control. Built on the recent remarkable progress in optical control of motional states of diamonds, here we report an experimental demonstration of quantum teleportation from light beams to vibrational states of a macroscopic diamond under ambient conditions. Through quantum process tomography, we demonstrate average teleportation fidelity (90.6+/- 1.0)%, clearly exceeding the classical limit of 2/3. The experiment pushes the target of quantum teleportation to the biggest object so far, with interesting implications for optomechanical quantum control and quantum information science.
7 pages, 4 figures
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- Measurement-Induced Collective Vibrational Quantum Coherence under Spontaneous Raman Scattering in a Liquid
- Interactive optomechanical coupling with nonlinear polaritonic systems
- Remote sensing and faithful quantum teleportation through non-localized qubits
- Proposal for optomagnonic teleportation and entanglement swapping
- Entanglement and quantum teleportation under superposed gravitational fields
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