Published October 1, 2005 | Version v1
Journal article

Adaptive phase measurements in linear optical quantum computation

  • 1. Centre for Quantum Computer Technology, Department of Physics, University of Queensland, St Lucia QLD 4072 (Australia)
  • 2. Centre for Quantum Computer Technology, School of Science, Griffith University (Australia)

Description

Photon counting induces an effective non-linear optical phase shift in certain states derived by linear optics from single photons. Although this non-linearity is non-deterministic, it is sufficient in principle to allow scalable linear optics quantum computation (LOQC). The most obvious way to encode a qubit optically is as a superposition of the vacuum and a single photon in one mode-so-called 'single-rail' logic. Until now this approach was thought to be prohibitively expensive (in resources) compared to 'dual-rail' logic where a qubit is stored by a photon across two modes. Here we attack this problem with real-time feedback control, which can realize a quantum-limited phase measurement on a single mode, as has been recently demonstrated experimentally. We show that with this added measurement resource, the resource requirements for single-rail LOQC are not substantially different from those of dual-rail LOQC. In particular, with adaptive phase measurements an arbitrary qubit state α vertical bar 0>+β vertical bar 1> can be prepared deterministically

Availability note (English)

Available online at http://stacks.iop.org/1464-4266/7/S245/job5_10_007.pdf or at the Web site for the Journal of Optics. B, Quantum and Semiclassical Optics (Print) (ISSN 1464-4266) http://www.iop.org/

Additional details

Publishing Information

Journal Title
Journal of Optics. B, Quantum and Semiclassical Optics (Print)
Journal Volume
7
Journal Issue
10
Journal Page Range
p. S245-S249
ISSN
1464-4266

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
36095570
Subject category
S74: ATOMIC AND MOLECULAR PHYSICS;
Descriptors DEI
CONTROL; ENERGY LEVELS; FEEDBACK; INFORMATION THEORY; LOGIC CIRCUITS; NONLINEAR PROBLEMS; OPTICS; PHASE SHIFT; PHOTONS; QUANTUM MECHANICS
Descriptors DEC
BOSONS; ELECTRONIC CIRCUITS; ELEMENTARY PARTICLES; MASSLESS PARTICLES; MECHANICS