Search results for "Solid-state physics"

showing 10 items of 112 documents

Quasi-one-dimensional quantum spin liquid in the $\rm {Cu(C_4H_4N_2)(NO_3)_2}$ insulator

2015

We analyze measurements of the magnetization, differential susceptibility and specific heat of quasi-one dimensional insulator Cu(C$_4$H$_4$N$_2$)(NO$_3$)$_2$ (CuPzN) subjected to magnetic fields. We show that the thermodynamic properties are defined by quantum spin liquid formed with spinons, with the magnetic field tuning the insulator CuPzN towards quantum critical point related to fermion condensation quantum phase transition (FCQPT) at which the spinon effective mass diverges kinematically. We show that the FCQPT concept permits to reveal and explain the scaling behavior of thermodynamic characteristics. For the first time, we construct the schematic $T-H$ (temperature---magnetic field…

Quantum phase transitionPhysicsCondensed Matter::Quantum GasesPhysics and Astronomy (miscellaneous)Condensed matter physicsStrongly Correlated Electrons (cond-mat.str-el)FOS: Physical sciences01 natural sciencesSpinon010305 fluids & plasmasMagnetic fieldCondensed Matter - Strongly Correlated ElectronsMagnetizationEffective mass (solid-state physics)Quantum critical point0103 physical sciencesCondensed Matter::Strongly Correlated ElectronsQuantum spin liquid010306 general physicsPhase diagram
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Magnetic breakdown and charge density wave formation: a quantum oscillation study of the rare-earth tritellurides

2020

The rare-earth tritellurides ($R$Te$_3$, where $R$ = La, Ce, Pr, Nd, Sm, Gd, Tb, Dy, Ho, Er, Tm, Y) form a charge density wave state consisting of a single unidirectional charge density wave for lighter $R$, with a second unidirectional charge density wave, perpendicular and in addition to the first, also present at low temperatures for heavier $R$. We present a quantum oscillation study in magnetic fields up to 65T that compares the single charge density wave state with the double charge density wave state both above and below the magnetic breakdown field of the second charge density wave. In the double charge density wave state it is observed that there remain several small, light pockets…

Quantum phase transitionPhysicsCondensed matter physicsStrongly Correlated Electrons (cond-mat.str-el)Rare earthQuantum oscillationsFOS: Physical sciencesModel systemFermi surface02 engineering and technologyMagnetic breakdown021001 nanoscience & nanotechnology01 natural sciencesCondensed Matter - Strongly Correlated ElectronsEffective mass (solid-state physics)0103 physical sciences010306 general physics0210 nano-technologyCharge density wave
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Magnetic-field-induced reentrance of Fermi-liquid behavior and spin-lattice relaxation rates in

2009

Abstract A strong departure from Landau–Fermi liquid (LFL) behavior have been recently revealed in observed anomalies in both the magnetic susceptibility χ and the muon and 63Cu nuclear spin-lattice relaxation rates 1 / T 1 of YbCu 5 − x Au x ( x = 0.6 ). We show that the above anomalies along with magnetic-field-induced reentrance of LFL properties are indeed determined by the dependence of the quasiparticle effective mass M ∗ on magnetic field B and temperature T and demonstrate that violations of the Korringa law also come from M ∗ ( B , T ) dependence. We obtain this dependence theoretically utilizing our approach based on fermion condensation quantum phase transition (FCQPT) notion. Ou…

Quantum phase transitionPhysicsMagnetoresistanceCondensed matter physicsSpin–lattice relaxationGeneral Physics and Astronomy01 natural sciencesMagnetic susceptibility010305 fluids & plasmasEffective mass (solid-state physics)0103 physical sciencesQuasiparticleStrongly correlated materialFermi liquid theory010306 general physicsPhysics Letters A
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Energy scales and magnetoresistance at a quantum critical point

2009

The magnetoresistance (MR) of CeCoIn_5 is notably different from that in many conventional metals. We show that a pronounced crossover from negative to positive MR at elevated temperatures and fixed magnetic fields is determined by the scaling behavior of quasiparticle effective mass. At a quantum critical point (QCP) this dependence generates kinks (crossover points from fast to slow growth) in thermodynamic characteristics (like specific heat, magnetization etc) at some temperatures when a strongly correlated electron system transits from the magnetic field induced Landau Fermi liquid (LFL) regime to the non-Fermi liquid (NFL) one taking place at rising temperatures. We show that the abov…

Quantum phase transitionPhysicsMagnetoresistanceCondensed matter physicsStrongly Correlated Electrons (cond-mat.str-el)General Physics and AstronomyFOS: Physical sciences01 natural sciences010305 fluids & plasmasMagnetizationCondensed Matter - Strongly Correlated ElectronsEffective mass (solid-state physics)Quantum critical point0103 physical sciencesQuasiparticleStrongly correlated materialCondensed Matter::Strongly Correlated Electrons010306 general physicsScaling
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Fermi Liquid with Fermion Condensate

2014

Here we discuss the general properties of FCQPT leading to the emergence of FC. We present a microscopic derivation of the main equations of FC, and show that Fermi systems with FC form an entirely new class of Fermi liquids with its own topological structure, protecting the FC state. We construct the phase diagram, and explore the order parameter of these systems. We show that the fermion condensate has a strong impact on the observable physical properties of systems, where it is realized, up to relatively high temperatures of a few tens kelvin. Two different scenarios of the quantum critical point (QCP), a zero-temperature instability of the Landau state, related to the divergence of the …

Quantum phase transitionPhysicsPhase transitionEffective mass (solid-state physics)Condensed matter physicsQuantum critical pointFermi surfaceObservableFermi liquid theoryFermi gas
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Stability of dark matter from the D4×Z2f flavor group

2011

Abstract We study a model based on the dihedral group D 4 in which the dark matter is stabilized by the interplay between a remnant Z 2 symmetry, of the same spontaneously broken non-abelian group, and an auxiliary Z 2 f introduced to eliminate unwanted couplings in the scalar potential. In the lepton sector the model is compatible with normal hierarchy only and predicts a vanishing reactor mixing angle, θ 13 = 0 . Since m ν 1 = 0 , we also have a simple prediction for the effective mass in terms of the solar angle: | m β β | = | m ν 2 | sin 2 θ ⊙ ∼ 10 − 3 eV . There also exists a large portion of the model parameter space where the upper bounds on lepton flavor violating processes are not …

QuarkPhysicsNuclear and High Energy PhysicsParticle physics010308 nuclear & particles physicsCabibbo–Kobayashi–Maskawa matrixSpontaneous symmetry breakingHigh Energy Physics::PhenomenologyDark matterScalar potentialDihedral group7. Clean energy01 natural sciencesEffective mass (solid-state physics)0103 physical sciencesHigh Energy Physics::Experiment010306 general physicsLeptonPhysics Letters B
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Structural properties of the range-II- and range-III order in amorphous-SiO2 probed by electron paramagnetic resonance and Raman spectroscopy

2010

In the present work we report an experimental investigation by electron paramagnetic resonance spectroscopy on the hyperfine structure of the E. point defect, probing the local arrangement of the network (range-II order), and by Raman spectroscopy on the D 1 and D 2 lines, probing mean features of the network (range-III order). Our studies, performed on a-SiO 2 samples thermally treated at 1000 °C in air for different time durations, show that changes of the hyperfine structure and of the D 1 and D 2 lines occur in a correlated way. These results give strong evidence that the range-II and range-III order properties are intimately related to each other and that these properties are determine…

Raman scatteringMaterials scienceSolid-state physicsAnalytical chemistryParamagnetic materiallaw.inventionPoint defectsymbols.namesakeNuclear magnetic resonancelawElectron spin resonance spectroscopyElectron paramagnetic resonanceHyperfine structureParamagnetic resonanceExperimental investigationSettore FIS/01 - Fisica SperimentaleElectron resonanceSilicon compoundCondensed Matter PhysicsCrystallographic defectElectronic Optical and Magnetic MaterialsAmorphous solidMolecular geometryRaman spectroscopysymbolsHyperfine structureElectron paramagnetic resonanceTime durationRaman spectroscopyRaman scatteringElectron paramagnetic resonance spectroscopySilica difetti di punto proprieta' struturali
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Creation of paramagnetic defects by gamma irradiation in amorphous silica

2000

An electron spin resonance (ESR) study of the defects induced by γ-rays in various types of natural and synthetic silica is reported. Three main structures were identified: the E′ center and two doublets with field splitting of 7.4 and 11.8 mT, respectively, both centered around the E′ center signal. Another structure partially overlapping the E′ center line was also detected, consisting in three peaks with a maximum field splitting of 1.36 mT. We have investigated the growth kinetics of these centers on increasing the y-ray accumulated dose. In all investigated materials the growth of E′ centers can be interpreted as caused by γ-activated conversion of one or more precursors. The 1.36 mT s…

Range (particle radiation)PhotoluminescenceField (physics)Solid-state physicsChemistryAnalytical chemistryAtomic and Molecular Physics and Opticslaw.inventionParamagnetismlawAtomic physicsElectron paramagnetic resonanceHyperfine structureLine (formation)
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Two-Dimensional Carbon: A Review of Synthesis Methods, and Electronic, Optical, and Vibrational Properties of Single-Layer Graphene

2019

Graphite has been widely used by humans for a large part of their history. Nevertheless, it has only recently been possible to isolate its basic unit: carbon atoms arranged in a honeycomb structure on a single plane, namely graphene. Since its discovery, many techniques have been developed and improved to properly synthesize graphene and its derivatives which are part of the novel class of two-dimensional materials. These advanced materials have imposed themselves in nanotechnology thanks to some outstanding physical properties due to their reduced dimensions. In the case of graphene, its reduced dimension gives rise to a high electrical mobility, a large thermal conductivity, a high mechan…

Solid-state physics2D materialNanotechnology02 engineering and technology010402 general chemistry01 natural sciencesNanomaterialslaw.inventionlcsh:QD241-441symbols.namesakeThermal conductivitylcsh:Organic chemistrylawGraphiteSpectroscopyGraphenecarbongrapheneGeneral Medicine021001 nanoscience & nanotechnologymaterial science0104 chemical sciencesHoneycomb structureRaman spectroscopysymbolsnanomaterial0210 nano-technologyRaman spectroscopy
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ChemInform Abstract: Some Aspects of the Solid State Physics of Yellow Arsenic

2010

Solid-state physicsChemistryEnvironmental chemistryYellow arsenicGeneral MedicineChemInform
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