56,222 research outputs found
Size dependence of second-order hyperpolarizability of finite periodic chain under Su-Schrieffer-Heeger model
The second hyperpolarizability of
double-bond finite chain of trans-polyactylene is analyzed using the
Su-Schrieffer-Heeger model to explain qualitative features of the
size-dependence behavior of . Our study shows that is
{\it nonmonotonic} with and that the nonmonotonicity is caused by the
dominant contribution of the intraband transition to in polyenes.
Several important physical effects are discussed to reduce quantitative
discrepancies between experimental and our resultsComment: 3 figures, 1 tabl
Landau quantization in coupled Weyl points: a case study of semimetal NbP
Weyl semimetal (WSM) is a newly discovered quantum phase of matter that
exhibits topologically protected states characterized by two separated Weyl
points with linear dispersion in all directions. Here, via combining
theoretical analysis and magneto-infrared spectroscopy of an archetypal Weyl
semimetal, niobium phosphide, we demonstrate that the coupling between Weyl
points can significantly modify the electronic structure of a WSM and provide a
new twist to the protected states. These findings suggest that the coupled Weyl
points should be considered as the basis for analysis of realistic WSMs.Comment: Accepted in Nano Let
Semiclassical Time Evolution of the Holes from Luttinger Hamiltonian
We study the semi-classical motion of holes by exact numerical solution of
the Luttinger model. The trajectories obtained for the heavy and light holes
agree well with the higher order corrections to the abelian and the non-abelian
adiabatic theories in Ref. [1] [S. Murakami et al., Science 301, 1378(2003)],
respectively. It is found that the hole trajectories contain rapid oscillations
reminiscent of the "Zitterbewegung" of relativistic electrons. We also comment
on the non-conservation of helicity of the light holes.Comment: 4 pages, 5 fugure
Expanded mixed multiscale finite element methods and their applications for flows in porous media
We develop a family of expanded mixed Multiscale Finite Element Methods
(MsFEMs) and their hybridizations for second-order elliptic equations. This
formulation expands the standard mixed Multiscale Finite Element formulation in
the sense that four unknowns (hybrid formulation) are solved simultaneously:
pressure, gradient of pressure, velocity and Lagrange multipliers. We use
multiscale basis functions for the both velocity and gradient of pressure. In
the expanded mixed MsFEM framework, we consider both cases of separable-scale
and non-separable spatial scales. We specifically analyze the methods in three
categories: periodic separable scales, - convergence separable scales, and
continuum scales. When there is no scale separation, using some global
information can improve accuracy for the expanded mixed MsFEMs. We present
rigorous convergence analysis for expanded mixed MsFEMs. The analysis includes
both conforming and nonconforming expanded mixed MsFEM. Numerical results are
presented for various multiscale models and flows in porous media with shales
to illustrate the efficiency of the expanded mixed MsFEMs.Comment: 33 page
From the Quantum Link Model on the Honeycomb Lattice to the Quantum Dimer Model on the Kagom\'e Lattice: Phase Transition and Fractionalized Flux Strings
We consider the -d quantum link model on the honeycomb lattice
and show that it is equivalent to a quantum dimer model on the Kagom\'e
lattice. The model has crystalline confined phases with spontaneously broken
translation invariance associated with pinwheel order, which is investigated
with either a Metropolis or an efficient cluster algorithm. External
half-integer non-Abelian charges (which transform non-trivially under the
center of the gauge group) are confined to each other
by fractionalized strings with a delocalized flux. The strands
of the fractionalized flux strings are domain walls that separate distinct
pinwheel phases. A second-order phase transition in the 3-d Ising universality
class separates two confining phases; one with correlated pinwheel
orientations, and the other with uncorrelated pinwheel orientations.Comment: 16 pages, 20 figures, 2 tables, two more relevant references and one
short paragraph are adde
Landau level spectroscopy of massive Dirac fermions in single-crystalline ZrTe5 thin flakes
We report infrared magneto-spectroscopy studies on thin crystals of an
emerging Dirac material ZrTe5 near the intrinsic limit. The observed structure
of the Landau level transitions and zero-field infrared absorption indicate a
two-dimensional Dirac-like electronic structure, similar to that in graphene
but with a small relativistic mass corresponding to a 9.4 meV energy gap.
Measurements with circularly polarized light reveal a significant electron-hole
asymmetry, which leads to splitting of the Landau level transitions at high
magnetic fields. Our model, based on the Bernevig-Hughes-Zhang effective
Hamiltonian, quantitatively explains all observed transitions, determining the
values of the Fermi velocity, Dirac mass (or gap), electron-hole asymmetry, and
electron and hole g-factors
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