Quantum optical coherence can survive photon losses: a continuous-variable quantum erasure correcting code
arXiv:1006.3941 · doi:10.1038/nphoton.2010.168
Abstract
A fundamental requirement for enabling fault-tolerant quantum information processing is an efficient quantum error-correcting code (QECC) that robustly protects the involved fragile quantum states from their environment. Just as classical error-correcting codes are indispensible in today's information technologies, it is believed that QECC will play a similarly crucial role in tomorrow's quantum information systems. Here, we report on the first experimental demonstration of a quantum erasure-correcting code that overcomes the devastating effect of photon losses. Whereas {\it errors} translate, in an information theoretic language, the noise affecting a transmission line, {\it erasures} correspond to the in-line probabilistic loss of photons. Our quantum code protects a four-mode entangled mesoscopic state of light against erasures, and its associated encoding and decoding operations only require linear optics and Gaussian resources. Since in-line attenuation is generally the strongest limitation to quantum communication, much more than noise, such an erasure-correcting code provides a new tool for establishing quantum optical coherence over longer distances. We investigate two approaches for circumventing in-line losses using this code, and demonstrate that both approaches exhibit transmission fidelities beyond what is possible by classical means.
5 pages, 4 figures
References in corpus (6)
- Experimental demonstration of a BDCZ quantum repeater node
- A No-Go Theorem for Gaussian Quantum Error Correction
- Feasibility of free space quantum key distribution with coherent polarization states
- Experimentally feasible quantum erasure-correcting code for continuous variables
- Entanglement-Assisted Quantum Error Correction with Linear Optics
- Quantum Filtering of Optical Coherent States
Cited by in corpus (32)
- Gaussian Quantum Information
- New class of quantum error-correcting codes for a bosonic mode
- Can One Trust Quantum Simulators?
- Quantum state tomography of an itinerant squeezed microwave field
- Satellite-Based Continuous-Variable Quantum Communications: State-of-the-Art and a Predictive Outlook
- Progress towards practical qubit computation using approximate Gottesman-Kitaev-Preskill codes
- Noiseless loss suppression in quantum optical communication
- Quantum-enhanced micro-mechanical displacement sensitivity
- Algebraic techniques in designing quantum synchronizable codes
- Gaussian error correction of quantum states in a correlated noisy channel
- Testing higher-order quantum interference with many-particle states
- Two-way covert quantum communication in the microwave regime
- Quantum error-correction of continuous-variable states with realistic resources
- Detection of non-Gaussian entangled states with an improved continuous-variable separability criterion
- Experimental implementation of a Raman-assisted six-quanta process
- Simple quantum error detection and correction for superconducting qubits
- Assisted concentration of Gaussian resources
- Generation of picosecond pulsed coherent state superpositions
- Statistical Mechanics of Monitored Dissipative Random Circuits
- On structure-preserving transformations of the Ito generator matrix for model reduction of quantum feedback networks
- Non-producibility of arbitrary non-Gaussian states using zero-mean Gaussian states and partial photon number resolving detection
- Performance optimization of continuous variable quantum teleportation with generalized photon-varying non-Gaussian operations
- Classical simulability of constant-depth linear-optical circuits with noise
- Topological error correction with a Gaussian cluster state
- Noise reduction via optimal control in a light-matter quantum system
- Coupled three-mode squeezed vacuum: Gaussian steering and remote generation of Wigner negativity
- Temporal Quantum Noise Reduction Acquired by an Electron-Multiplying Charge-Coupled-Device Camera
- Coherent Processing of a Qubit Using One Squeezed State
- A scheme to protect against multiple quantum erasures
- Protecting Classical-Quantum Signals in Free Space Optical Channels
- Suppressing correlated noise in signals transmitted over the Gaussian memory channels using -port splitter and phase flips
- A Three-Mode Erasure Code for Continuous Variable Quantum Communications