Photonic quantum technologies
arXiv:1003.3928 · doi:10.1038/nphoton.2009.229
Abstract
The first quantum technology, which harnesses uniquely quantum mechanical effects for its core operation, has arrived in the form of commercially available quantum key distribution systems that achieve enhanced security by encoding information in photons such that information gained by an eavesdropper can be detected. Anticipated future quantum technologies include large-scale secure networks, enhanced measurement and lithography, and quantum information processors, promising exponentially greater computation power for particular tasks. Photonics is destined for a central role in such technologies owing to the need for high-speed transmission and the outstanding low-noise properties of photons. These technologies may use single photons or quantum states of bright laser beams, or both, and will undoubtably apply and drive state-of-the-art developments in photonics.
References in corpus (30)
- Quantum nature of a strongly-coupled single quantum dot-cavity system
- Optical Quantum Computing
- Silica-on-Silicon Waveguide Quantum Circuits
- Universal Quantum Computation with Continuous-Variable Cluster States
- Beating the Standard Quantum Limit with Four Entangled Photons
- Resource-efficient linear optical quantum computation
- Entanglement-free Heisenberg-limited phase estimation
- Generation of a superposition of odd photon number states for quantum information networks
- Observation of squeezed light with 10dB quantum noise reduction
- Shor's quantum factoring algorithm on a photonic chip
- Linear and nonlinear optical spectroscopy of a strongly-coupled microdisk-quantum dot system
- Manipulating multi-photon entanglement in waveguide quantum circuits
- High-speed linear optics quantum computing using active feed-forward
- A photonic cluster state machine gun
- Experimental demonstration of Shor's algorithm with quantum entanglement
- One-Way Quantum Computing in the Optical Frequency Comb
- Demonstration of Shor's quantum factoring algorithm using photonic qubits
- Observation of -9 dB quadrature squeezing with improvement of phase stability in homodyne measurement
- Generation of large-amplitude coherent-state superposition via ancilla-assisted photon-subtraction
- Experimental generation of four-mode continuous-variable cluster states
- Local Quantum Dot Tuning on Photonic Crystal Chips
- Demonstration of a quantum nondemolition sum gate
- Demonstration of deterministic and high fidelity squeezing of quantum information
- 7 dB quadrature squeezing at 860 nm with periodically-poled KTiOPO4
- Beating the standard quantum limit: Phase super-sensitivity of N-photon interferometers
- Local tuning of photonic crystal cavities using chalcogenide glasses
- High-fidelity continuous-variable quantum teleportation toward multi-step quantum operations
- The Photonic Module: an on-demand resource for photonic entanglement
- Generation of continuous-wave broadband Einstein-Podolsky-Rosen beams using periodically-poled lithium niobate waveguides
- Deterministic optical quantum computer using photonic modules
Cited by in corpus (23)
- Quantum walks of correlated particles
- Witnessing Quantum Coherence: from solid-state to biological systems
- Input-Output Formalism For Few-Photon Transport in One-Dimensional Nanophotonic Waveguides Coupled to a Qubit
- Multimode quantum interference of photons in multiport integrated devices
- Generating superposition of up-to three photons for continuous variable quantum information processing
- A monolithically integrated polarization entangled photon pair source on a silicon chip
- Using Quantum Computers for Quantum Simulation
- Optical continuous-variable qubit
- Phase-locked indistinguishable photons with synthesized waveforms from a solid-state source
- High-fidelity operation of quantum photonic circuits
- An extremely low-noise heralded single-photon source: a breakthrough for quantum technologies
- Non-Markovian quantum input-output networks
- Feedback control in quantum optics: an overview of experimental breakthroughs and areas of application
- Simulation of noise-assisted transport via optical cavity networks
- Photonic circuits for generating modal, spectral, and polarization entanglement
- Modal and Polarization Qubits in Ti:LiNbO Photonic Circuits for a Universal Quantum Logic Gate
- Quantitative analysis of quantum dot dynamics and emission spectra in cavity quantum electrodynamics
- Coherence properties of a single dipole emitter in diamond
- Demonstration of active feedforward one-way quantum computing with photon-matter hyperentanglement
- Far-field emission profiles from L3 photonic crystal cavity modes
- Generation of spatially pure photon pairs in a multimode nonlinear waveguide using intermodal dispersion
- The Photodetection Process under the Conditions of an Imperfect Measurement Device
- Multipartite nonlocality in the presence of particle-number super-selection rules