Cavity-Enhanced Atom-Photon Entanglement with Subsecond Lifetime
arXiv:2101.01988 · doi:10.1103/PhysRevLett.126.090501
Abstract
A cold atomic ensemble suits well for optical quantum memories, and its entanglement with a single photon forms the building block for quantum networks that give promise for many revolutionary applications. Efficiency and lifetime are among the most important figures of merit for a memory. In this paper, we report the realization of entanglement between an atomic ensemble and a single-photon with subsecond lifetime and high efficiency. We engineer dual control modes in a ring cavity to create entanglement and make use of 3-dimensional optical lattice to prolong memory lifetime. The memory efficiency is 38% for 0.1 second storage. We verify the atom-photon entanglement after 1 second storage by testing the Bell inequality with a result of .
References in corpus (15)
- The Quantum Internet
- Entanglement detection
- Quantum Storage of Photonic Entanglement in a Crystal
- Towards a global quantum network
- A millisecond quantum memory for scalable quantum networks
- Efficient quantum memory for single photon polarization qubits
- Photon storage in Lambda-type optically dense atomic media. II. Free-space model
- Efficient and long-lived quantum memory with cold atoms inside a ring cavity
- Photon storage in Lambda-type optically dense atomic media. I. Cavity model
- Experimental realization of a multiplexed quantum memory with 225 individually accessible memory cells
- Interfacing Collective Atomic Excitations and Single Photons
- A Robust Atom-Photon Entanglement Source for Quantum Repeaters
- Quantum repeaters with imperfect memories: cost and scalability
- Experimental observation of magic-wavelength behavior in optical lattice-trapped Rb
- Coherence preservation of a single neutral atom qubit transferred between magic-intensity optical traps