Demonstration of a passive photon-atom swap gate
arXiv:1711.10974
Abstract
Deterministic quantum interactions between single photons and single quantum emitters are a vital building block towards the distribution of quantum information between remote systems. Deterministic photon-atom state transfer has been demonstrated by using protocols that include active feedback or synchronized control pulses. Here we demonstrate a completely passive swap gate between the states of a single photon and a single atom. The underlying mechanism is single-photon Raman interaction (SPRINT) - an interference-based effect in which a photonic qubit deterministically controls the state of a material qubit encoded in the two ground states of a Λ system, and vice versa. Using a nanofiber-coupled microsphere resonator coupled to single Rb atoms we swap a photonic qubit into the atom and back, demonstrating nonclassical fidelities in both directions. Requiring no control fields or feedback protocol, the gate takes place automatically at the timescale of the atom's cavity- enhanced spontaneous emission time. Applicable to any waveguide-coupled Λ system, this scheme provides a versatile building block for the modular scaling up of quantum information processing systems.
18 pages, 3 figures, 1 table
References in corpus (12)
- The Quantum Internet
- Experimental quantum teleportation
- Chiral Quantum Optics
- Nanophotonic quantum phase switch with a single atom
- All-Optical Routing of Single Photons by a One-Atom Switch Controlled by a Single Photon
- A Single-Atom Quantum Memory
- A Quantum Gate between a Flying Optical Photon and a Single Trapped Atom
- Reversible state transfer between light and a single trapped atom
- Topological quantum computing with a very noisy network and local error rates approaching one percent
- Single photon absorption by a single quantum emitter
- Heralded Storage of a Photonic Quantum Bit in a Single Atom
- Microwave Down-Conversion with an Impedance-Matched System in Driven Circuit QED