Publication | Closed Access
From Photons to Phonons and Back: A THz Optical Memory in Diamond
72
Citations
37
References
2013
Year
Thz PhotonicsQuantum PhotonicsOptical MaterialsEngineeringTerahertz PhotonicsQuantum ComputingOptical PropertiesQuantum MatterPhotonicsQuantum SciencePhysicsQuantum DevicePhotonic MaterialsQuantum InformationRoom Temperature DiamondOptical Quantum MemoriesQuantum TransducersQuantum OpticOptical MemoryThz Optical MemoryQuantum TechnologyNatural SciencesOptical PhysicApplied PhysicsMaterial DispersionQuantum DevicesQuantum Photonic DeviceOptoelectronics
Optical quantum memories are vital for the scalability of future quantum technologies, enabling long-distance secure communication and local synchronization of quantum components. We demonstrate a THz-bandwidth memory for light using the optical phonon modes of a room temperature diamond. This large bandwidth makes the memory compatible with down-conversion-type photon sources. We demonstrate that four-wave mixing noise in this system is suppressed by material dispersion. The resulting noise floor is just 7×10(-3) photons per pulse, which establishes that the memory is capable of storing single quanta. We investigate the principle sources of noise in this system and demonstrate that high material dispersion can be used to suppress four-wave mixing noise in Λ-type systems.
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