27,807 research outputs found
Generating entanglement between microwave photons and qubits in multiple cavities coupled by a superconducting qutrit
We discuss how to generate entangled coherent states of four
\textrm{microwave} resonators \textrm{(a.k.a. cavities)} coupled by a
superconducting qubit. We also show \textrm{that} a GHZ state of four
superconducting qubits embedded in four different resonators \textrm{can be
created with this scheme}. In principle, \textrm{the proposed method} can be
extended to create an entangled coherent state of resonators and to prepare
a Greenberger-Horne-Zeilinger (GHZ) state of qubits distributed over
cavities in a quantum network. In addition, it is noted that four resonators
coupled by a coupler qubit may be used as a basic circuit block to build a
two-dimensional quantum network, which is useful for scalable quantum
information processing.Comment: 13 pages, 7 figure
Extracting an arbitrary relative phase from a multiqubit two-component entangled state
We show that an arbitrary relative phase can be extracted from a multiqubit
two-component (MTC) entangled state by local Hadamard transformations and
measurements along a single basis only. In addition, how to distinguish a MTC
entangled state with an arbitrary entanglement degree and relative phase from a
class of multiqubit mixed states is discussed.Comment: 4 pages, REVTEX, accepted by Physical Review
FACTORS INFLUENCING PROJECT TEAM EFFECTIVENESS AS PERCEIVED BY PROJECT MANAGERS IN MALAYSIA – A PILOT STUDY
As more project teams are formed to help Malaysian organizations in achieving their objectives that individual efforts cannot achieve, there is a compelling reason to understand the critical factors that can influence project team effectiveness, because the effectiveness outcome can yield benefits to organizations. This study developed a research model underpinned on Cohen & Bailey’s (1997) Team Effectiveness Framework to empirically analyze some critical factors that influence project team effectiveness. Results show that project manager’s leadership roles are not directly influencing project team effectiveness, but they are directly influencing both team building & participation, and team shared mental models in which these two factors are directly and positively influencing project team effectivenessProject Team Effectiveness, Leadership Roles, Team Building & Participation, Team Shared Mental Models, Project Manager
Resource Allocation in Wireless Networks with RF Energy Harvesting and Transfer
Radio frequency (RF) energy harvesting and transfer techniques have recently
become alternative methods to power the next generation of wireless networks.
As this emerging technology enables proactive replenishment of wireless
devices, it is advantageous in supporting applications with quality-of-service
(QoS) requirement. This article focuses on the resource allocation issues in
wireless networks with RF energy harvesting capability, referred to as RF
energy harvesting networks (RF-EHNs). First, we present an overview of the
RF-EHNs, followed by a review of a variety of issues regarding resource
allocation. Then, we present a case study of designing in the receiver
operation policy, which is of paramount importance in the RF-EHNs. We focus on
QoS support and service differentiation, which have not been addressed by
previous literatures. Furthermore, we outline some open research directions.Comment: To appear in IEEE Networ
Entangling two oscillators with arbitrary asymmetric initial states
A Hamiltonian is presented, which can be used to convert any asymmetric state
of two oscillators and into an
entangled state. Furthermore, with this Hamiltonian and local operations only,
two oscillators, initially in any asymmetric initial states, can be entangled
with a third oscillator. The prepared entangled states can be engineered with
an arbitrary degree of entanglement. A discussion on the realization of this
Hamiltonian is given. Numerical simulations show that, with current circuit QED
technology, it is feasible to generate high-fidelity entangled states of two
microwave optical fields, such as entangled coherent states, entangled squeezed
states, entangled coherent-squeezed states, and entangled cat states. Our
finding opens a new avenue for creating not only two-color or three-color
entanglement of light but also wave-like or particle-like entanglement or novel
wave-like and particle-like hybrid entanglement.Comment: 8 pages, 2 figure
Fundamentals of Inter-cell Overhead Signaling in Heterogeneous Cellular Networks
Heterogeneous base stations (e.g. picocells, microcells, femtocells and
distributed antennas) will become increasingly essential for cellular network
capacity and coverage. Up until now, little basic research has been done on the
fundamentals of managing so much infrastructure -- much of it unplanned --
together with the carefully planned macro-cellular network. Inter-cell
coordination is in principle an effective way of ensuring different
infrastructure components behave in a way that increases, rather than
decreases, the key quality of service (QoS) metrics. The success of such
coordination depends heavily on how the overhead is shared, and the rate and
delay of the overhead sharing. We develop a novel framework to quantify
overhead signaling for inter-cell coordination, which is usually ignored in
traditional 1-tier networks, and assumes even more importance in multi-tier
heterogeneous cellular networks (HCNs). We derive the overhead quality contour
for general K-tier HCNs -- the achievable set of overhead packet rate, size,
delay and outage probability -- in closed-form expressions or computable
integrals under general assumptions on overhead arrivals and different overhead
signaling methods (backhaul and/or wireless). The overhead quality contour is
further simplified for two widely used models of overhead arrivals: Poisson and
deterministic arrival process. This framework can be used in the design and
evaluation of any inter-cell coordination scheme. It also provides design
insights on backhaul and wireless overhead channels to handle specific overhead
signaling requirements.Comment: 21 pages, 9 figure
Quantum transport properties of ultrathin silver nanowires
The quantum transport properties of the ultrathin silver nanowires are
investigated. For a perfect crystalline nanowire with four atoms per unit cell,
three conduction channels are found, corresponding to three bands crossing
the Fermi level. One conductance channel is disrupted by a single-atom defect,
either adding or removing one atom. Quantum interference effect leads to
oscillation of conductance versus the inter-defect distance. In the presence of
multiple-atom defect, one conduction channel remains robust at Fermi level
regardless the details of defect configuration. The histogram of conductance
calculated for a finite nanowire (seven atoms per cross section) with a large
number of random defect configurations agrees well with recent experiment.Comment: 4 pages, 6 figure
Simultaneous pi/2 rotation of two spin species of different gyromagnetic ratios
We examine the characteristics of the pi/2 pulse for simultaneously rotating
two spin species of different gyromagnetic ratios with the same sign. For a
pi/2 pulse using a rotating magnetic field, we derive the equation relating the
frequency and strength of the pulse to the gyromagnetic ratios of the two
particles and the strength of the constant holding field. For a pi/2 pulse
using a linear oscillatory magnetic field, we obtain the solutions numerically,
and compare them with the solutions for the rotating pi/2 pulse. Application of
this analysis to the specific case of rotating neutrons and 3He atoms
simultaneously with a pi/2 pulse, proposed for a neutron electric dipole moment
experiment, is also presented
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