Search results for "Reno"

showing 10 items of 1031 documents

Renormalization group flows for Wilson-Hubbard matter and the topological Hamiltonian

2019

Understanding the robustness of topological phases of matter in the presence of interactions poses a difficult challenge in modern condensed matter, showing interesting connections to high energy physics. In this work, we leverage these connections to present a complete analysis of the continuum long-wavelength description of a generic class of correlated topological insulators: Wilson-Hubbard topological matter. We show that a Wilsonian renormalization group (RG) approach, combined with the so-called topological Hamiltonian, provide a quantitative route to understand interaction-induced topological phase transitions that occur in Wilson-Hubbard matter. We benchmark two-loop RG predictions …

PhysicsPhase transitionQuantum PhysicsStrongly Correlated Electrons (cond-mat.str-el)FOS: Physical sciences02 engineering and technologyRenormalization group021001 nanoscience & nanotechnologyTopology01 natural sciencesMatrix multiplicationsymbols.namesakeCondensed Matter - Strongly Correlated ElectronsQuantum Gases (cond-mat.quant-gas)Topological insulator0103 physical sciencessymbolsddc:530Quantum Physics (quant-ph)010306 general physics0210 nano-technologyHamiltonian (quantum mechanics)Condensed Matter - Quantum Gases
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Renormalization of the Fröhlich constant for electrons in a quantum dot

2002

Recent experimental investigations of far-infrared attenuation in GaAs/InAs quantum dot in magnetic field and measurements of photoluminescence features for smaller pyramid-shape GaAs/InAs quantum dots indicated an enhancement of coupling of longitudinal optical phonons with confined electrons, which manifested itself in a significant increase of the effective Frohlich constant in comparison to its bulk value. We give a simple quasiclassical explanation of this enhancement and relate the renormalization of the Frohlich constant with the dot diameter.

PhysicsPhotoluminescenceCondensed matter physicsCondensed Matter::OtherPhononGeneral Physics and AstronomyElectronFermionCondensed Matter::Mesoscopic Systems and Quantum Hall EffectMagnetic fieldRenormalizationCondensed Matter::Materials ScienceQuantum dotLeptonPhysics Letters A
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Non-Perturbative Renormalization of Lattice Four-Fermion Operators without Power Subtractions

1999

A general non-perturbative analysis of the renormalization properties of $\Delta I=3/2$ four-fermion operators in the framework of lattice regularization with Wilson fermions is presented. We discuss the non-perturbative determination of the operator renormalization constants in the lattice Regularization Independent (RI or MOM) scheme. We also discuss the determination of the finite lattice subtraction coefficients from Ward Identities. We prove that, at large external virtualities, the determination of the lattice mixing coefficients, obtained using the RI renormalization scheme, is equivalent to that based on Ward Identities, in the continuum and chiral limits. As a feasibility study of …

PhysicsPhysics and Astronomy (miscellaneous)High Energy Physics::LatticeHigh Energy Physics - Lattice (hep-lat)FísicaFOS: Physical sciencesFermionRenormalizationOperator (computer programming)High Energy Physics - LatticeRegularization (physics)Lattice (order)Non-perturbativeEngineering (miscellaneous)Mathematical physics
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The η transition form factor from space- and time-like experimental data

2015

The $\eta$ transition form factor is analysed for the first time in both space- and time-like regions at low and intermediate energies in a model-independent approach through the use of rational approximants. The $\eta\rightarrow e^+e^-\gamma$ experimental data provided by the A2 Collaboration in the very low energy region of the dilelectron invariant mass distribution allows for the extraction of the most precise up-to-date slope and curvature parameters of the form factors as well as their values at zero and infinity. The impact of these new results on the mixing parameters of the $\eta$-$\eta^\prime$ system, together with the role played by renormalisation dependent effects, and on the d…

PhysicsPhysics and Astronomy (miscellaneous)Nuclear TheoryAstrophysics::Instrumentation and Methods for AstrophysicsZero (complex analysis)Form factor (quantum field theory)FOS: Physical sciencesComputer Science::Computation and Language (Computational Linguistics and Natural Language and Speech Processing)CurvatureSpace (mathematics)High Energy Physics - ExperimentNuclear Theory (nucl-th)RenormalizationHigh Energy Physics - Experiment (hep-ex)High Energy Physics - PhenomenologyHigh Energy Physics - Phenomenology (hep-ph)Distribution (mathematics)Computer Science::General LiteratureInvariant massEngineering (miscellaneous)Mixing (physics)Mathematical physics
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Temporal and spatial persistence of combustion fronts in paper

2003

The spatial and temporal persistence, or first-return distributions are measured for slow-combustion fronts in paper. The stationary temporal and (perhaps less convincingly) spatial persistence exponents agree with the predictions based on the front dynamics, which asymptotically belongs to the Kardar-Parisi-Zhang universality class. The stationary short-range and the transient behavior of the fronts are non-Markovian, and the observed persistence properties thus do not agree with the predictions based on Markovian theory. This deviation is a consequence of additional time and length scales, related to the crossovers to the asymptotic coarse-grained behavior. Peer reviewed

PhysicsPhysicsFront (oceanography)General Physics and AstronomyMarkov processpersistenceexperimentsRenormalization groupCombustionsymbols.namesakepaper sheetssymbolsTransient (oscillation)Statistical physicsPersistence (discontinuity)
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Intra- and Interchain Correlations in Semidilute Polymer Solutions:  Monte Carlo Simulations and Renormalization Group Results

2000

We investigate the intra- and intermolecular correlations in semidilute polymer solutions by large-scale computer simulations and renormalization group calculations. In the framework of the bond fluctuation model we study polymers with chain lengths up to N = 2048 monomers and determine the intermolecular pair correlation function, the coherent scattering intensity, and its distinct part at all length scales. The simulations are compared quantitatively to renormalization group calculations of the universal crossover scaling function. Special attention is paid to length scales smaller than the density screening length ξ, where the distinct part of the scattering function in the simulations i…

PhysicsPolymers and PlasticsCondensed matter physicsScatteringOrganic ChemistryIntermolecular forceMonte Carlo methodRenormalization groupRadial distribution functionMolecular physicsInorganic ChemistryMaterials ChemistryExponentStructure factorScalingMacromolecules
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Phase Equilibria of Lattice Polymers from Histogram Reweighting Monte Carlo Simulations

1998

Histogram-reweighting Monte Carlo simulations were used to obtain polymer / solvent phase diagrams for lattice homopolymers of chain lengths up to r=1000 monomers. The simulation technique was based on performing a series of grand canonical Monte Carlo calculations for a small number of state points and combining the results to obtain the phase behavior of a system over a range of temperatures and densities. Critical parameters were determined from mixed-field finite-size scaling concepts by matching the order parameter distribution near the critical point to the distribution for the three-dimensional Ising universality class. Calculations for the simple cubic lattice (coordination number z…

PhysicsPolymers and PlasticsStatistical Mechanics (cond-mat.stat-mech)Coordination numberOrganic ChemistryMonte Carlo methodThermodynamicsFOS: Physical sciencesRenormalization groupCondensed Matter - Soft Condensed MatterInorganic ChemistryVirial coefficientCritical point (thermodynamics)Lattice (order)Materials ChemistrySoft Condensed Matter (cond-mat.soft)Ising modelScalingCondensed Matter - Statistical Mechanics
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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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Precision Mass Measurements of Cr58–63 : Nuclear Collectivity Towards the N=40 Island of Inversion

2018

The neutron-rich isotopes $^{58-63}$Cr were produced for the first time at the ISOLDE facility and their masses were measured with the ISOLTRAP spectrometer. The new values are up to 300 times more precise than those in the literature and indicate significantly different nuclear structure from the new mass-surface trend. A gradual onset of deformation is found in this proton and neutron mid-shell region, which is a gateway to the second island of inversion around \emph{N}=40. In addition to comparisons with density-functional theory and large-scale shell-model calculations, we present predictions from the valence-space formulation of the \emph{ab initio} in-medium similarity renormalization…

PhysicsProtonIsotope010308 nuclear & particles physicsIsland of inversionNuclear TheoryAb initioNuclear structureGeneral Physics and AstronomyRenormalization group01 natural sciences7. Clean energyISOLTRAPNuclear physics0103 physical sciencesPhysics::Atomic and Molecular ClustersNeutronNuclear Experiment010306 general physicsPhysical Review Letters
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Infinite projected entangled-pair state algorithm for ruby and triangle-honeycomb lattices

2018

The infinite Projected Entangled-Pair State (iPEPS) algorithm is one of the most efficient techniques for studying the ground-state properties of two-dimensional quantum lattice Hamiltonians in the thermodynamic limit. Here, we show how the algorithm can be adapted to explore nearest-neighbor local Hamiltonians on the ruby and triangle-honeycomb lattices, using the Corner Transfer Matrix (CTM) renormalization group for 2D tensor network contraction. Additionally, we show how the CTM method can be used to calculate the ground state fidelity per lattice site and the boundary density operator and entanglement entropy (EE) on an infinite cylinder. As a benchmark, we apply the iPEPS method to th…

PhysicsQuantum PhysicsStrongly Correlated Electrons (cond-mat.str-el)FOS: Physical sciences02 engineering and technologyQuantum entanglementRenormalization group021001 nanoscience & nanotechnology01 natural sciencesTransfer matrixCondensed Matter - Strongly Correlated ElectronsLattice (order)0103 physical sciencesThermodynamic limitQuantum Physics (quant-ph)010306 general physics0210 nano-technologyAnisotropyAlgorithmQuantumPhase diagramPhysical Review B
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