1,600 research outputs found
Odd-petal states and persistent flows in spin-orbit-coupled Bose-Einstein condensates
We study the phase diagram of a Rashba spin-orbit-coupled Bose-Einstein
condensate confined in a two-dimensional toroidal trap. In the immiscible
regime we find an azimuthally periodic density distribution, with the
periodicity highly tuneable as a function of the spin-orbit coupling strength
and which favours an odd number of petals in each component. This allows for a
wide range of states that can be created. We further show that in the miscible
regime, both components possess states with persistent flows with a unit
winding number difference between them and with the absolute values of these
winding numbers depending on the spin-orbit coupling strength. All features of
the odd-petal and the persistent flow states can be explained using a simple
but effective model.Comment: 5 pages, 2 figure
Thermodynamical properties of dark energy with the equation of state
The thermodynamical properties of dark energy are usually investigated with
the equation of state . Recent observations
show that our universe is accelerating, and the apparent horizon and the event
horizon vary with redshift . When definitions of the temperature and entropy
of a black hole are used to the two horizons of the universe, we examine the
thermodynamical properties of the universe which is enveloped by the apparent
horizon and the event horizon respectively. We show that the first and the
second laws of thermodynamics inside the apparent horizon in any redshift are
satisfied, while they are broken down inside the event horizon in some
redshift. Therefore, the apparent horizon for the universe may be the boundary
of thermodynamical equilibrium for the universe like the event horizon for a
black hole.Comment: 6 pages, 5 figures, Accepted for publication in Physical Review
Bose-Einstein Condensates in Spin-Orbit Coupled Optical Lattices: Flat Bands and Superfluidity
Recently spin-orbit (SO) coupled superfluids in free space or harmonic traps
have been extensively studied, motivated by the recent experimental realization
of SO coupling for Bose-Einstein condensates (BEC). However, the rich physics
of SO coupled BEC in optical lattices has been largely unexplored. In this
paper, we show that in suitable parameter region the lowest Bloch state forms
an isolated flat band in a one dimensional (1D) SO coupled optical lattice,
which thus provides an experimentally feasible platform for exploring the
recently celebrated topological flat band physics in lattice systems. We show
that the flat band is preserved even with the mean field interaction in BEC. We
investigate the superfluidity of the BEC in SO coupled lattices through
dynamical and Landau stability analysis, and show that the BEC is stable on the
whole flat band.Comment: 5 pages, 4 figures, to appear in Phys. Rev.
Control and synchronization of Julia sets of the complex dissipative standard system
The fractal behaviors of the complex dissipative standard system are discussed in this paper. By using the boundedness of the forward and backward orbits, Julia set of the system is introduced and visualization of Julia set is also given. Then a controller is designed to achieve Julia set shrinking or expanding with the changing of the control parameter. And synchronization of two different Julia sets is discussed by adding a coupling item, which makes one Julia set change to be the other. The simulations illustrate the efficacy of these methods
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