Search results for " PRIN"

showing 10 items of 1809 documents

Ideality factor behavior between the maximum power point and open circuit

2013

The local ideality factor analysis of dark and light I-V curves has been used in the past to study various performance degradation effects in solar cells. Trapping, edge recombination and injection-level-dependent recombination are expressed as “lumps, humps and bumps” in the plots of the local ideality factor over cell voltage (m-V plots). Earlier applications of this differential technique did not correct the plots for the series resistance effect. Thus, the bumps at the higher voltages introduced by some mechanisms were more difficult to quantify. A possible solution is to analyze ISC-VOC curves, but their measurement is not always possible. We present a formula for calculation of the RS…

PhysicsOpticsMaximum power principleEquivalent series resistanceOpen-circuit voltagebusiness.industryPoint (geometry)TrappingEdge (geometry)businessPlot (graphics)Computational physicsVoltage2013 IEEE 39th Photovoltaic Specialists Conference (PVSC)
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Chiral approach to antikaons in dense matter

2008

Antikaons in dense nuclear matter are studied using a chiral unitary approach which incorporates the s- and p-waves of the \( \bar K \) N interaction. We include, in a self-consistent way, Pauli blocking effects, meson self-energies modified by nuclear short-range correlations and baryon binding potentials. We show that the on-shell factorization cannot be applied to evaluate the in-medium corrections to p-wave amplitudes. We also obtain an attractive shift for the Λ and Σ masses of −30 MeV at saturation density while the Σ* width gets sensibly increased to about 80 MeV. The moderate attraction developed by the antikaon does not support the existence of very deep and narrow bound states.

PhysicsParticle physicsMesonNuclear TheoryNuclear matterBaryonNuclear physicssymbols.namesakePauli exclusion principleAmplitudeFactorizationBound statesymbolsSaturation (graph theory)Nuclear Experiment
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Dosimetric characterization of Ir-192 LDR elongated sources

2008

Ir-192 wires have been used in low-dose-rate brachytherapy for many years. Commercially available treatment planning systems approximate the dose rate distribution of the straight or curved wires applying the superposition principle using one of the following methods: (i) The wire is modeled as a set of point sources, (ii) the wire is modeled as a set of small straight segment wires, (iii) the values of the parameters and functions of the American Association of Physicists in Medicine (AAPM) Task Group 43 protocol are obtained for wire lengths between 3 and 7 cm assuming some simplifications. The dose rate distributions obtained using these methods for linear wires of different lengths and …

PhysicsPhotonbusiness.industrymedicine.medical_treatmentMonte Carlo methodBrachytherapyStraight segmentGeneral MedicineComputational physicsSuperposition principlemedicineDosimetryDose rateNuclear medicinebusinessAnisotropyMedical Physics
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Brachytherapy structural shielding calculations using Monte Carlo generated, monoenergetic data

2014

Purpose: To provide a method for calculating the transmission of any broad photon beam with a known energy spectrum in the range of 20–1090 keV, through concrete and lead, based on the superposition of corresponding monoenergetic data obtained from Monte Carlo simulation. Methods: MCNP5 was used to calculate broad photon beam transmission data through varying thickness of lead and concrete, for monoenergetic point sources of energy in the range pertinent to brachytherapy (20–1090 keV, in 10 keV intervals). The three parameter empirical model introduced byArcher et al. [“Diagnostic x-ray shielding design based on an empirical model of photon attenuation,” Health Phys. 44, 507–517 (1983)] was…

PhysicsPhotonsPhotonbusiness.industryRadiotherapy Planning Computer-AssistedBrachytherapyMonte Carlo methodMonte Carlo method for photon transportGeneral MedicineSuperposition principleRadiation ProtectionOpticsTransmission curveElectromagnetic shieldingEmission spectrumbusinessMonte Carlo MethodBeam (structure)Medical Physics
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Renormalized Proton-Neutron Quasiparticle Random-Phase Approximation and Its Application to Double Beta Decay

1995

A self-consistent method of treating excitations of the proton-neutron quasiparticle random-phase approximation is presented. The non-self-consistent methods violate the Pauli exclusion principle and lead to an eventual collapse of the ground state. This behavior renders a reliable calculation of the nuclear matrix elements, relevant for the prediction of double-beta-decay half-lives, difficult. The present formalism promotes the Pauli exclusion principle and avoids the collapse of the double-beta-decay matrix elements. We have applied this formalism to the double beta decay of ${}^{100}$Mo.

PhysicsProtonGeneral Physics and AstronomyRenormalizationsymbols.namesakePauli exclusion principleDouble beta decayQuantum electrodynamicsQuantum mechanicsQuasiparticlesymbolsNeutronRandom phase approximationGround statePhysical Review Letters
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Effects of Pauli blocking on pion production in central collisions of neutron-rich nuclei

2020

Pauli blocking is carefully investigated for the processes of $NN \rightarrow N \Delta$ and $\Delta \rightarrow N \pi$ in heavy-ion collisions, aiming at a more precise prediction of the $\pi^-/ \pi^+$ ratio which is an important observable to constrain the high-density symmetry energy. We use the AMD+JAM approach, which combines the antisymmetrized molecular dynamics for the time evolution of nucleons and the JAM model to treat processes for $\Delta$ resonances and pions. As is known in general transport-code simulations, it is difficult to treat Pauli blocking very precisely due to unphysical fluctuations and additional smearing of the phase-space distribution function, when Pauli blockin…

PhysicsProtonNuclear TheoryBlocking (radio)Nuclear TheoryFOS: Physical sciencesNuclear physicsNuclear Theory (nucl-th)symbols.namesakePionPauli exclusion principlesymbolsWigner distribution functionNeutronImpact parameterNuclear Experiment (nucl-ex)NucleonNuclear ExperimentNuclear Experiment
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Time-optimal selective pulses of two uncoupled spin-1/2 particles

2018

We investigate the time-optimal solution of the selective control of two uncoupled spin 1/2 particles. Using the Pontryagin Maximum Principle, we derive the global time-optimal pulses for two spins with different offsets. We show that the Pontryagin Hamiltonian can be written as a one-dimensional effective Hamiltonian. The optimal fields can be expressed analytically in terms of elliptic integrals. The time-optimal control problem is solved for the selective inversion and excitation processes. A bifurcation in the structure of the control fields occurs for a specific offset threshold. In particular, we show that for small offsets, the optimal solution is the concatenation of regular and sin…

PhysicsQuantum Physics0209 industrial biotechnologySelective controlSpinsMathematical analysisFOS: Physical sciences02 engineering and technologyTime optimal01 natural sciencesPontryagin's minimum principle020901 industrial engineering & automation0103 physical sciencesElliptic integralQuantum Physics (quant-ph)010306 general physicsHamiltonian (control theory)BifurcationExcitationPhysical Review A
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Coherent Control of the Rotational Degree of Freedom of a Two-Ion Coulomb Crystal.

2019

We demonstrate the preparation and coherent control of the angular momentum state of a two-ion crystal. The ions are prepared with an average angular momentum of 7850ℏ freely rotating at 100 kHz in a circularly symmetric potential, allowing us to address rotational sidebands. By coherently exciting these motional sidebands, we create superpositions of states separated by up to four angular momentum quanta. Ramsey experiments show the expected dephasing of the superposition which is dependent on the number of quanta separating the states. These results demonstrate coherent control of a collective motional state described as a quantum rotor in trapped ions. Moreover, our Letter offers an expa…

PhysicsQuantum PhysicsAngular momentumGeneral PhysicsAtomic Physics (physics.atom-ph)DephasingFOS: Physical sciencesGeneral Physics and AstronomyQuantum simulator01 natural sciencesMathematical SciencesPhysics - Atomic PhysicsIonSuperposition principleEngineeringCoherent control0103 physical sciencesPhysical SciencesCoulombAtomic physicsQuantum Physics (quant-ph)010306 general physicsQuantum
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Bell's inequality violation for entangled generalized Bernoulli states in two spatially separate cavities

2005

We consider the entanglement of orthogonal generalized Bernoulli states in two separate single-mode high-$Q$ cavities. The expectation values and the correlations of the electric field in the cavities are obtained. We then define, in each cavity, a dichotomic operator expressible in terms of the field states which can be, in principle, experimentally measured by a probe atom that ``reads'' the field. Using the quantum correlations of couples of these operators, we construct a Bell's inequality which is shown to be violated for a wide range of the degree of entanglement and which can be tested in a simple way. Thus the cavity fields directly show quantum non-local properties. A scheme is als…

PhysicsQuantum PhysicsBell stateField (physics)Cavity quantum electrodynamicsFOS: Physical sciencesQuantum entanglementSettore FIS/03 - Fisica Della MateriaAtomic and Molecular Physics and OpticsEntanglementBernoulli's principleOperator (computer programming)Cavity radiation fieldBell's theoremQuantum mechanicsBell's inequalityBernoulli processQuantum Physics (quant-ph)Quantum
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Time-optimal control of SU(2) quantum operations

2013

We propose an analysis of the time-optimal control of SU(2) quantum operations. By using the Pontryagin Maximum Principle, we show how to determine the optimal trajectory reaching a given target state. Explicit analytical solutions are given for two specific examples. We discuss the role of the detuning in the construction of the optimal synthesis.

PhysicsQuantum PhysicsClassical mechanicsOptimal trajectoryFOS: Physical sciencesState (functional analysis)Control (linguistics)Time optimalQuantum Physics (quant-ph)QuantumAtomic and Molecular Physics and OpticsSpecial unitary groupPontryagin's minimum principle
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