10,076 research outputs found
Topological Mid-gap States of Topological Insulators with Flux-Superlattice
In this paper based on the Haldane model, we study the topological insulator
with superlattice of pi-fluxes. We find that there exist the mid-gap states
induced by the flux-superlattice. In particular, the mid-gap states have
nontrivial topological properties, including the nonzero Chern number and the
gapless edge states. We derive an effective tight-binding model to describe the
topological midgap states and then study the mid-gap states by the effective
tight-binding model. The results can be straightforwardly generalized to other
two dimensional topological insulators with flux-superlattice.Comment: 6 pages, 9 figure
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Application of land use regression techniques for urban greening: An analysis of Tianjin, China
Quantum Phase Liquids-Fermionic Superfluid without Phase Coherence
We investigate the two dimensional generalized attractive Hubbard model in a
bipartite lattice, and and a "quantum phase liquid" phase, in which the
fermions are paired but don't have phase coherence at zero temperature, in
analogy to quantum spin liquid phase. Then, two types of topological quantum
phase liquids with a small external magnetic field-Z2 quantum phase liquids and
chiral quantum phase liquids-are discussed.Comment: 7 pages, 2 figure
Topological superfluid in a fermionic bilayer optical lattice
In this paper, a topological superfluid phase with Chern number C=1
possessing gapless edge states and non-Abelian anyons is designed in a C=1
topological insulator proximity to an s-wave superfluid on an optical lattice
with the effective gauge field and layer-dependent Zeeman field coupled to
ultracold fermionic atoms pseudo spin. We also study its topological properties
and calculate the phase stiffness by using the random-phase-approximation
approach. Finally we derive the temperature of the Kosterlitz-Thouless
transition by means of renormalized group theory. Owning to the existence of
non-Abelian anyons, this C=1 topological superfluid may be a possible candidate
for topological quantum computation.Comment: 15 pages, 8 figure
Nuclear-nuclear interaction mediated by a mechanically controlled nitrogen-vacancy-center spin in diamond
We propose a scheme to achieve nuclear-nuclear indirect interactions mediated
by a mechanically driven nitrogen-vacancy (NV) center in diamond. Here we
demonstrate two-qubit entangling gates and quantum-state transfer between two
carbon nuclei in diamond. In such a system, the NV center interacts with a
nearby nuclear spin via a dipole-dipole interaction. Under the quantum Zeno
condition, the scheme is robust against decoherence caused by coupling between
the NV center (nuclear spins) and the environment. Conveniently, precise
control of dipole coupling is not required so this scheme is insensitive to
fluctuating positions of the nuclear spins and the NV center. Our scheme
provides a general blueprint for multi-nuclear-spin gates and for multi-party
communication in a polygon geometry with each vertex occupied by a nuclear
spin.Comment: 11 pages, 8 figure
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