Search results for "quantum computer"

showing 10 items of 211 documents

Generation of two-mode quantum states of light with timing controllable memories

2020

We created and experimentally verified two-mode entangled states of light, α|0,1⟩ + βe*+|1,0⟩, by means of two phase-sensitive optical quantum memories. The release timing of each optical mode can be independently controlled for up to 400 ns.

PhysicsMode (statistics)02 engineering and technology021001 nanoscience & nanotechnology01 natural sciencesMultiplexingQuantum memory010309 opticsQuantum stateQuantum mechanics0103 physical sciences0210 nano-technologyQuantumQuantum computerCoherence (physics)Conference on Lasers and Electro-Optics
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Enhancing coherence in molecular spin qubits via atomic clock transitions

2016

Quantum computing is an emerging area within the information sciences revolving around the concept of quantum bits (qubits). A major obstacle is the extreme fragility of these qubits due to interactions with their environment that destroy their quantumness. This phenomenon, known as decoherence, is of fundamental interest1,2. There are many competing candidates for qubits, including superconducting circuits3, quantum optical cavities4, ultracold atoms5 and spin qubits6,7,8, and each has its strengths and weaknesses. When dealing with spin qubits, the strongest source of decoherence is the magnetic dipolar interaction9. To minimize it, spins are typically diluted in a diamagnetic matrix. For…

PhysicsMultidisciplinaryCondensed matter physicsCluster stateUNESCO::QUÍMICASpin engineeringQuantum Physics02 engineering and technology010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences:QUÍMICA [UNESCO]0104 chemical sciencesQuantum error correctionQuantum mechanicsQuantum informationW state0210 nano-technologySuperconducting quantum computingQuantum dissipationQuantum computer
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Simulating open quantum systems with trapped ions

2005

This paper focuses on the possibility of simulating the open system dynamics of a paradigmatic model, namely the damped harmonic oscillator, with single trapped ions. The key idea consists in using a controllable physical system, i.e. a single trapped ion interacting with an engineered reservoir, to simulate the dynamics of other open systems usually difficult to study. The exact dynamics of the damped harmonic oscillator under very general conditions is firstly derived. Some peculiar characteristic of the system’s dynamics are then presented. Finally a way to implement with trapped ion the specific quantum simulator of interest is discussed.

PhysicsOpen quantum systemClassical mechanicsQuantum mechanicsQuantum dynamicsPhysical systemCavity quantum electrodynamicsopen quantum systems quantum computation trapped ions non-Markovian dynamicsQuantum simulatorCondensed Matter PhysicsTrapped ion quantum computerHarmonic oscillatorQuantum computer
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Model of Qubit in Multi-Electron Quantum Dot

2001

PhysicsPhase qubitFlux qubitCharge qubitQuantum error correctionQuantum dotQubitQuantum mechanicsGeneral Physics and AstronomyOne-way quantum computerQutritActa Physica Polonica A
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On-chip Generation, Coherent Control and Processing of Complex Entangled Photon States

2019

We demonstrate the on-chip generation of time-bin entangled two- and multi-photon qubit states, as well as high-dimensional frequency-entangled photon pairs. Combining time and frequency entanglement, we generate high-dimensional optical cluster states and implement proof-of-concept high-dimensional one-way quantum computing. This, by using standard, fiber-based telecommunication components.

PhysicsPhotonbusiness.industryFiber (mathematics)TheoryofComputation_GENERALPhysics::OpticsQuantum Physics02 engineering and technologyQuantum entanglement021001 nanoscience & nanotechnology01 natural sciencesCoherent controlQubit0103 physical sciencesCluster (physics)Optoelectronics010306 general physics0210 nano-technologybusinessQuantum computer2019 IEEE Photonics Society Summer Topical Meeting Series (SUM)
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Timing Control of a Heralded Single Photon Emission

2012

We experimentally demonstrate controlling the emission timing of a heralded single photon from a non-degenerate optical parametric oscillator, by placing another quickly tunable cavity at the exit as a shutter.

PhysicsPhotonbusiness.industryPhysics::OpticsQuantum information processingSingle photon emissionOpticsHomodyne detectionSpontaneous parametric down-conversionShutterOptical parametric oscillatorOptoelectronicsbusinessQuantum computerFrontiers in Optics 2012/Laser Science XXVIII
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Probabilistic Fault-Tolerant Universal Quantum Computation and Sampling Problems in Continuous Variables

2019

Continuous-Variable (CV) devices are a promising platform for demonstrating large-scale quantum information protocols. In this framework, we define a general quantum computational model based on a CV hardware. It consists of vacuum input states, a finite set of gates - including non-Gaussian elements - and homodyne detection. We show that this model incorporates encodings sufficient for probabilistic fault-tolerant universal quantum computing. Furthermore, we show that this model can be adapted to yield sampling problems that cannot be simulated efficiently with a classical computer, unless the polynomial hierarchy collapses. This allows us to provide a simple paradigm for short-term experi…

PhysicsPolynomial hierarchyQuantum PhysicsComputer scienceGaussianProbabilistic logicFOS: Physical sciences01 natural sciences010305 fluids & plasmassymbols.namesakeHomodyne detection[PHYS.QPHY]Physics [physics]/Quantum Physics [quant-ph]0103 physical sciencessymbolsQuantum information010306 general physicsQuantum Physics (quant-ph)AlgorithmQuantumFinite setQuantum computer
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Polynomial approximation of non-Gaussian unitaries by counting one photon at a time

2017

In quantum computation with continous-variable systems, quantum advantage can only be achieved if some non-Gaussian resource is available. Yet, non-Gaussian unitary evolutions and measurements suited for computation are challenging to realize in the lab. We propose and analyze two methods to apply a polynomial approximation of any unitary operator diagonal in the amplitude quadrature representation, including non-Gaussian operators, to an unknown input state. Our protocols use as a primary non-Gaussian resource a single-photon counter. We use the fidelity of the transformation with the target one on Fock and coherent states to assess the quality of the approximate gate.

PhysicsPolynomialQuantum PhysicsGaussianMathematicsofComputing_NUMERICALANALYSISFOS: Physical sciences01 natural sciences010305 fluids & plasmasGaussian filterGaussian random fieldsymbols.namesake[PHYS.QPHY]Physics [physics]/Quantum Physics [quant-ph]Quantum mechanics0103 physical sciencessymbolsGaussian functionApplied mathematicsCoherent statesUnitary operatorQuantum Physics (quant-ph)010306 general physicsQuantum computer
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Controlling Fast Transport of Cold Trapped Ions

2012

We realize fast transport of ions in a segmented micro-structured Paul trap. The ion is shuttled over a distance of more than 10^4 times its groundstate wavefunction size during only 5 motional cycles of the trap (280 micro meter in 3.6 micro seconds). Starting from a ground-state-cooled ion, we find an optimized transport such that the energy increase is as low as 0.10 $\pm$ 0.01 motional quanta. In addition, we demonstrate that quantum information stored in a spin-motion entangled state is preserved throughout the transport. Shuttling operations are concatenated, as a proof-of-principle for the shuttling-based architecture to scalable ion trap quantum computing.

PhysicsQuantum PhysicsAtomic Physics (physics.atom-ph)FOS: Physical sciencesGeneral Physics and AstronomyIon trappingPhysics - Atomic PhysicsIonTrap (computing)Ion trapAtomic physicsQuantum informationQuantum Physics (quant-ph)Ground stateTrapped ion quantum computerQuantum computerPhysical Review Letters
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Measurement of Dipole Matrix Elements with a Single Trapped Ion.

2015

We demonstrate a new method for the direct measurement of atomic dipole transition matrix elements based on techniques developed for quantum information purposes. The scheme consists of measuring dispersive and absorptive off-resonant light-ion interactions and is applicable to many atomic species. We determine the dipole matrix element pertaining to the Ca II H line, i.e. the 4$^2$S$_{1/2} \leftrightarrow $ 4$^2$P$_{1/2}$ transition of $^{40}$Ca$^+$, for which we find the value 2.8928(43) ea$_0$. Moreover, the method allows us to deduce the lifetime of the 4$^2$P$_{1/2}$ state to be 6.904(26) ns, which is in agreement with predictions from recent theoretical calculations and resolves a lon…

PhysicsQuantum PhysicsAtomic Physics (physics.atom-ph)General Physics and AstronomyFOS: Physical sciencesIon trappingMeasure (mathematics)Physics - Atomic PhysicsIonDipoleMatrix (mathematics)Matrix elementAtomic physicsQuantum Physics (quant-ph)Quantum computerLine (formation)Physical review letters
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