Search results for "fluid"

showing 10 items of 5513 documents

Backaction-evading measurement of entanglement in optomechanics

2019

We propose here a fully backaction-evading scheme for the measurement of the entanglement between two nanomechanical resonators. The system, which consists of two mechanical oscillators, coupled to a single mode of an electromagnetic resonant cavity through a radiation-pressure interaction term, is driven by two pump tones and four detection tones. As previously discussed in the literature, the former induce entanglement between the two mechanical oscillators, while we show here that a specific choice of phase and amplitude of the detection tones allows for direct pairwise reconstruction of the collective quadrature fluctuations of the mechanical oscillators belonging to quantum-mechanics-f…

PhysicsQuantum PhysicsSingle-mode optical fiberPhase (waves)FOS: Physical sciencesQuantum entanglementResonant cavity01 natural sciencesoskillaattorit010305 fluids & plasmasQuadrature (mathematics)optomechanicsentanglement detectionResonatorAmplitudenanorakenteetQuantum mechanics0103 physical scienceskvanttimekaniikka010306 general physicsQuantum Physics (quant-ph)Optomechanics
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Quantum walks and non-Abelian discrete gauge theory

2016

A new family of discrete-time quantum walks (DTQWs) on the line with an exact discrete $U(N)$ gauge invariance is introduced. It is shown that the continuous limit of these DTQWs, when it exists, coincides with the dynamics of a Dirac fermion coupled to usual $U(N)$ gauge fields in $2D$ spacetime. A discrete generalization of the usual $U(N)$ curvature is also constructed. An alternate interpretation of these results in terms of superimposed $U(1)$ Maxwell fields and $SU(N)$ gauge fields is discussed in the Appendix. Numerical simulations are also presented, which explore the convergence of the DTQWs towards their continuous limit and which also compare the DTQWs with classical (i.e. non-qu…

PhysicsQuantum PhysicsSpacetimeHigh Energy Physics::LatticeFOS: Physical sciencesGauge (firearms)01 natural sciences[PHYS.PHYS.PHYS-GEN-PH]Physics [physics]/Physics [physics]/General Physics [physics.gen-ph]010305 fluids & plasmasInterpretation (model theory)symbols.namesakeDirac fermion[PHYS.QPHY]Physics [physics]/Quantum Physics [quant-ph]Quantum mechanics0103 physical sciencessymbols[ PHYS.PHYS.PHYS-GEN-PH ] Physics [physics]/Physics [physics]/General Physics [physics.gen-ph]Quantum walkGauge theoryAbelian group010306 general physicsQuantum Physics (quant-ph)QuantumComputingMilieux_MISCELLANEOUSMathematical physics
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Quantum Search with Multiple Walk Steps per Oracle Query

2015

We identify a key difference between quantum search by discrete- and continuous-time quantum walks: a discrete-time walk typically performs one walk step per oracle query, whereas a continuous-time walk can effectively perform multiple walk steps per query while only counting query time. As a result, we show that continuous-time quantum walks can outperform their discrete-time counterparts, even though both achieve quadratic speedups over their corresponding classical random walks. To provide greater equity, we allow the discrete-time quantum walk to also take multiple walk steps per oracle query while only counting queries. Then it matches the continuous-time algorithm's runtime, but such …

PhysicsQuantum PhysicsSpeedupLoop-erased random walkFOS: Physical sciencesRandom walk01 natural sciencesAtomic and Molecular Physics and OpticsOracleQuantum search010305 fluids & plasmasQuadratic equationMathematics::Probability0103 physical sciencesKey (cryptography)Quantum walkQuantum Physics (quant-ph)010306 general physicsAlgorithmComputer Science::Databases
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Breaking adiabatic quantum control with deep learning

2020

In the era of digital quantum computing, optimal digitized pulses are requisite for efficient quantum control. This goal is translated into dynamic programming, in which a deep reinforcement learning (DRL) agent is gifted. As a reference, shortcuts to adiabaticity (STA) provide analytical approaches to adiabatic speed up by pulse control. Here, we select single-component control of qubits, resembling the ubiquitous two-level Landau-Zener problem for gate operation. We aim at obtaining fast and robust digital pulses by combining STA and DRL algorithm. In particular, we find that DRL leads to robust digital quantum control with operation time bounded by quantum speed limits dictated by STA. I…

PhysicsQuantum PhysicsSpeedupbusiness.industryDeep learningFOS: Physical sciences01 natural sciences010305 fluids & plasmasRobustness (computer science)Qubit0103 physical sciencesReinforcement learningArtificial intelligence010306 general physicsbusinessAdiabatic processQuantum Physics (quant-ph)QuantumAlgorithmPhysical Review A
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Domain-wall excitations in the two-dimensional Ising spin glass

2018

The Ising spin glass in two dimensions exhibits rich behavior with subtle differences in the scaling for different coupling distributions. We use recently developed mappings to graph-theoretic problems together with highly efficient implementations of combinatorial optimization algorithms to determine exact ground states for systems on square lattices with up to $10\,000\times 10\,000$ spins. While these mappings only work for planar graphs, for example for systems with periodic boundary conditions in at most one direction, we suggest here an iterative windowing technique that allows one to determine ground states for fully periodic samples up to sizes similar to those for the open-periodic…

PhysicsQuantum PhysicsSpin glassStatistical Mechanics (cond-mat.stat-mech)SpinsPhase (waves)FOS: Physical sciencesDisordered Systems and Neural Networks (cond-mat.dis-nn)Condensed Matter - Disordered Systems and Neural NetworksComputational Physics (physics.comp-ph)01 natural sciences010305 fluids & plasmasTheoretical physicsDomain wall (magnetism)Spin wave0103 physical sciencesCombinatorial optimizationIsing spinQuantum Physics (quant-ph)010306 general physicsPhysics - Computational PhysicsCritical exponentCondensed Matter - Statistical MechanicsPhysical Review B
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Multipartite entanglement transfer in spin chains

2020

We investigate the transfer of genuine multipartite entanglement across a spin-1/2 chain with nearest-neighbor XX-type interaction. We focus on the perturbative regime, where a block of spins is weakly coupled at each edge of a quantum wire, embodying the role of a multiqubit sender and receiver, respectively. We find that high-quality multipartite entanglement transfer is achieved at the same time that three excitations are transferred to the opposite edge of the chain. Moreover, we find that both a finite concurrence and tripartite negativity is attained at much shorter time, making GHZ-distillation protocols feasible. Finally, we investigate the robustness of our protocol with respect to…

PhysicsQuantum PhysicsSpinsQuantum wireFOS: Physical sciencesGeneral Physics and AstronomyConcurrenceQuantum PhysicsPerturbative dynamic01 natural sciencesMultipartite entanglement010305 fluids & plasmasCondensed Matter - Other Condensed MatterQuantum spin chainChain (algebraic topology)Robustness (computer science)Quantum spin chainsQuantum mechanics0103 physical sciencesQuantum Physics (quant-ph)010306 general physicsFocus (optics)Other Condensed Matter (cond-mat.other)Spin-½Multipartite entanglementPhysics Letters A
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Spin chains for two-qubit teleportation

2019

Generating high-quality multi-particle entanglement between communicating parties is the primary resource in quantum teleportation protocols. To this aim, we show that the natural dynamics of a single spin chain is able to sustain the generation of two pairs of Bell states - possibly shared between a sender and a distant receiver - which can in turn enable two-qubit teleportation. In particular, we address a spin-1/2 chain with XX interactions, connecting two pairs of spins located at its boundaries, playing the roles of sender and receiver. In the regime where both end pairs are weakly coupled to the spin chain, it is possible to generate at predefinite times a state that has vanishing inf…

PhysicsQuantum PhysicsSpinsmedia_common.quotation_subjectQuantum communication Quantum entanglement Quantum teleportation 1-dimensional spin chains Quantum InformationFidelityFOS: Physical sciencesQuantum entanglementQuantum Physics01 natural sciencesTeleportationNatural dynamics010305 fluids & plasmasCondensed Matter - Other Condensed Mattersymbols.namesakeQuantum mechanicsQubit0103 physical sciencessymbols010306 general physicsHamiltonian (quantum mechanics)Quantum Physics (quant-ph)Quantum teleportationmedia_commonOther Condensed Matter (cond-mat.other)
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Killing (absorption) versus survival in random motion

2017

We address diffusion processes in a bounded domain, while focusing on somewhat unexplored affinities between the presence of absorbing and/or inaccessible boundaries. For the Brownian motion (L\'{e}vy-stable cases are briefly mentioned) model-independent features are established, of the dynamical law that underlies the short time behavior of these random paths, whose overall life-time is predefined to be long. As a by-product, the limiting regime of a permanent trapping in a domain is obtained. We demonstrate that the adopted conditioning method, involving the so-called Bernstein transition function, works properly also in an unbounded domain, for stochastic processes with killing (Feynman-…

PhysicsQuantum PhysicsStatistical Mechanics (cond-mat.stat-mech)SemigroupStochastic processOperator (physics)Spectrum (functional analysis)Probability (math.PR)FOS: Physical sciencesMathematical Physics (math-ph)01 natural sciencesDomain (mathematical analysis)010305 fluids & plasmasBounded function0103 physical sciencesFOS: MathematicsStatistical physics010306 general physicsQuantum Physics (quant-ph)Eigenvalues and eigenvectorsBrownian motionCondensed Matter - Statistical MechanicsMathematical PhysicsMathematics - ProbabilityPhysical Review E
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Frustration, Entanglement, and Correlations in Quantum Many Body Systems

2013

We derive an exact lower bound to a universal measure of frustration in degenerate ground states of quantum many-body systems. The bound results in the sum of two contributions: entanglement and classical correlations arising from local measurements. We show that average frustration properties are completely determined by the behavior of the maximally mixed ground state. We identify sufficient conditions for a quantum spin system to saturate the bound, and for models with twofold degeneracy we prove that average and local frustration coincide.

PhysicsQuantum PhysicsStatistical Mechanics (cond-mat.stat-mech)frustrationmedia_common.quotation_subjectDegenerate energy levelsFrustrationFOS: Physical sciencesQuantum entanglement01 natural sciencesUpper and lower boundsAtomic and Molecular Physics and Optics010305 fluids & plasmasQuantum mechanics0103 physical sciencesCondensed Matter::Strongly Correlated Electrons010306 general physicsQuantum statistical mechanicsDegeneracy (mathematics)Ground stateQuantum Physics (quant-ph)QuantumCondensed Matter - Statistical Mechanicsmedia_common
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Stern-Gerlach splitting of low-energy ion beams

2019

We present a feasibility study with several magnetic field configurations for creating spin-dependent forces that can split a low-energy ion beam by the Stern-Gerlach effect. To the best of our knowledge, coherent spin-splittings of charged particles have yet to be realised. Our proposal is based on ion source parameters taken from a recent experiment that demonstrated single-ion implantation from a high-brightness ion source combined with a radio-frequency Paul trap. The inhomogeneous magnetic fields can be created by permanently magnetised microstructures or from current-carrying wires with sizes in the micron range, such as those recently used in a successful implementation of the Stern-…

PhysicsQuantum PhysicsStern–Gerlach experimentIon beamAtomic Physics (physics.atom-ph)Institut für Physik und AstronomieGeneral Physics and AstronomyFOS: Physical sciences01 natural sciencesIon sourceCharged particlePhysics - Atomic Physics010305 fluids & plasmasMagnetic fieldIonsymbols.namesake0103 physical sciencessymbolsddc:530Ion trapAtomic physics010306 general physicsQuantum Physics (quant-ph)Lorentz force
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