Tunable ion-photon entanglement in an optical cavity
arXiv:1301.0275 · doi:10.1038/nature11120
Abstract
Proposed quantum networks require both a quantum interface between light and matter and the coherent control of quantum states. A quantum interface can be realized by entangling the state of a single photon with the state of an atomic or solid-state quantum memory, as demonstrated in recent experiments with trapped ions, neutral atoms, atomic ensembles, and nitrogen-vacancy spins. The entangling interaction couples an initial quantum memory state to two possible light-matter states, and the atomic level structure of the memory determines the available coupling paths. In previous work, these paths' transition parameters determine the phase and amplitude of the final entangled state, unless the memory is initially prepared in a superposition state, a step that requires coherent control. Here we report the fully tunable entanglement of a single 40Ca+ ion and the polarization state of a single photon within an optical resonator. Our method, based on a bichromatic, cavity-mediated Raman transition, allows us to select two coupling paths and adjust their relative phase and amplitude. The cavity setting enables intrinsically deterministic, high-fidelity generation of any two-qubit entangled state. This approach is applicable to a broad range of candidate systems and thus presents itself as a promising method for distributing information within quantum networks.
References in corpus (8)
- The Quantum Internet
- Quantum computing with trapped ions
- Quantum teleportation between light and matter
- Quantum Teleportation Between Distant Matter Qubits
- Optically generated 2-dimensional photonic cluster state from coupled quantum dots
- Photon-Photon Entanglement with a Single Trapped Atom
- Raman spectroscopy of a single ion coupled to a high-finesse cavity
- Towards a loophole-free test of Bell's inequality with entangled pairs of neutral atoms
Cited by in corpus (8)
- Characterizing Quantum Microwave Radiation and its Entanglement with Superconducting Qubits using Linear Detectors
- A single ion coupled to an optical fiber cavity
- Observation of Entanglement Between Itinerant Microwave Photons and a Superconducting Qubit
- Simulating Quantum Fields with Cavity QED
- Structural transitions of ion strings in quantum potentials
- Generation of arbitrary symmetric entangled states with conditional linear optical coupling
- Sub-Doppler Cavity Cooling Beyond The Lamb-Dicke Limit
- Coherence and decoherence in photon spin-qubit entanglement