Beating the channel capacity limit for linear photonic superdense coding
arXiv:1009.5128 · doi:10.1038/nphys919
Abstract
Dense coding is arguably the protocol that launched the field of quantum communication. Today, however, more than a decade after its initial experimental realization, the channel capacity remains fundamentally limited as conceived for photons using linear elements. Bob can only send to Alice three of four potential messages owing to the impossibility of carrying out the deterministic discrimination of all four Bell states with linear optics, reducing the attainable channel capacity from 2 to log_2 3 \approx 1.585 bits. However, entanglement in an extra degree of freedom enables the complete and deterministic discrimination of all Bell states. Using pairs of photons simultaneously entangled in spin and orbital angular momentum, we demonstrate the quantum advantage of the ancillary entanglement. In particular, we describe a dense-coding experiment with the largest reported channel capacity and, to our knowledge, the first to break the conventional linear-optics threshold. Our encoding is suited for quantum communication without alignment and satellite communication.
Letter: 6 pages, 4 figures. Supplementary Information: 4 pages, 1 figure
References in corpus (5)
Cited by in corpus (18)
- Entanglement detection
- Remote Preparation of Single-Photon "Hybrid" Entangled and Vector-Polarization States
- Experimental investigation of the dynamics of entanglement: Sudden death, complementarity, and continuous monitoring of the environment
- Optimal quantum cloning of orbital angular momentum photon qubits via Hong-Ou-Mandel coalescence
- Spin-orbit hybrid entanglement of photons and quantum contextuality
- Loss-resistant state teleportation and entanglement swapping using a quantum-dot spin in an optical microcavity
- Hyperentanglement of two photons in three degrees of freedom
- Multi-path entanglement of two photons
- High-capacity quantum secure direct communication based on quantum hyperdense coding with hyperentanglement
- Location-Dependent Communications using Quantum Entanglement
- Generation of hybrid polarization-orbital angular momentum entangled states
- Experimental violation of a Bell inequality with two different degrees of freedom of entangled particle pairs
- Environment-induced entanglement with a single photon
- Linear-Optical Hyperentanglement-Assisted Quantum Error-Correcting Code
- Verifying Genuine High-Order Entanglement
- Hyperentanglement witness
- Radio beam vorticity and orbital angular momentum
- High-dimensional Bell test for a continuous variable state in phase space and its robustness to detection inefficiency