47 research outputs found
Effective squeezing enhancement via measurement-induced non-Gaussian operation and its application to dense coding scheme
We study the measurement-induced non-Gaussian operation on the single- and
two-mode \textit{Gaussian} squeezed vacuum states with beam splitters and
on-off type photon detectors, with which \textit{mixed non-Gaussian} states are
generally obtained in the conditional process. It is known that the
entanglement can be enhanced via this non-Gaussian operation on the two-mode
squeezed vacuum state. We show that, in the range of practical squeezing
parameters, the conditional outputs are still close to Gaussian states, but
their second order variances of quantum fluctuations and correlations are
effectively suppressed and enhanced, respectively. To investigate an
operational meaning of these states, especially entangled states, we also
evaluate the quantum dense coding scheme from the viewpoint of the mutual
information, and we show that non-Gaussian entangled state can be advantageous
compared with the original two-mode squeezed state.Comment: REVTeX4, 14 pages with 21 figure
Experimental demonstration of entanglement assisted coding using a two-mode squeezed vacuum state
We have experimentally realized the scheme initially proposed as quantum
dense coding with continuous variables [Ban, J. Opt. B \textbf{1}, L9 (1999),
and Braunstein and Kimble, \pra\textbf{61}, 042302 (2000)]. In our experiment,
a pair of EPR (Einstein-Podolski-Rosen) beams is generated from two independent
squeezed vacua. After adding two-quadrature signal to one of the EPR beams, two
squeezed beams that contain the signal were recovered. Although our squeezing
level is not sufficient to demonstrate the channel capacity gain over the
Holevo limit of a single-mode channel without entanglement, our channel is
superior to conventional channels such as coherent and squeezing channels. In
addition, optical addition and subtraction processes demonstrated are
elementary operations of universal quantum information processing on continuous
variables.Comment: 4 pages, 4 figures, submitted to Phys. Rev.
Generation of large-amplitude coherent-state superposition via ancilla-assisted photon-subtraction
We propose and demonstrate a novel method to generate a large-amplitude
coherent-state superposition (CSS) via ancilla-assisted photon-subtraction. The
ancillary mode induces quantum interference of indistinguishable processes,
widening the controllability of quantum superposition at the conditional
output. We demonstrate the concept in the time domain, by a simple
time-separated two-photon subtraction from cw squeezed light. We observe the
largest CSS ever reported without any corrections, which will enable various
quantum information applications with CSS states.Comment: 5 pages, 4 figures; the revised versio