Skip to main content
Home
Department Of Physics text logo
  • Research
    • Our research
    • Our research groups
    • Our research in action
    • Research funding support
    • Summer internships for undergraduates
  • Study
    • Undergraduates
    • Postgraduates
  • Engage
    • For alumni
    • For business
    • For schools
    • For the public
  • Support
Menu
Atomic and Laser Physics
Credit: Jack Hobhouse

Professor Ian Walmsley CBE FRS FCGI

Director, Oxford Quantum Institute

Sub department

  • Atomic and Laser Physics
Ian.Walmsley@physics.ox.ac.uk
Telephone: 01865 772209
  • About
  • Publications

Photon pair generation via spontaneous four-wave mixing in birefringent optical fibers

2009 Conference on Lasers and Electro Optics and 2009 Conference on Quantum Electronics and Laser Science Conference CLEO QELS 2009 (2009)

Authors:

BJ Smith, P Mahou, O Cohen, JS Lundeen, IA Walmsley

Abstract:

We experimentally demonstrate photon pair production in standard single-mode optical fibers via spontaneous four-wave mixing. The process utilizes birefringent phase matching to control the photon pair joint spectral structure. © 2009 Optical Society of America.
More details

Tomography of a heralded N00N state with losses

2009 Conference on Lasers and Electro Optics and 2009 Conference on Quantum Electronics and Laser Science Conference CLEO QELS 2009 (2009)

Authors:

N Thomas-Peter, BJ Smith, IA Walmsley

Abstract:

We present the first complete characterization of a heralded two-photon N00N state in the presence of losses, including the one-photon and vacuum components. Reconstruction shows large vacuum and one-photon components resulting from loss. © 2008 Optical Society of America.
More details

Simplified quantum process tomography

New Journal of Physics 11 (2009)

Authors:

MPA Branderhorst, J Nunn, IA Walmsley, RL Kosut

Abstract:

We propose and evaluate experimentally an approach to quantum process tomography that completely removes the scaling problem plaguing the standard approach. The key to this simplification is the incorporation of prior knowledge of the class of physical interactions involved in generating the dynamics, which reduces the problem to one of parameter estimation. This allows part of the problem to be tackled using efficient convex methods, which, when coupled with a constraint on some parameters, allows globally optimal estimates for the Krauss operators to be determined from experimental data. Parameterizing the maps provides further advantages: it allows the incorporation of mixed states of the environment as well as some initial correlation between the system and environment, both of which are common physical situations following excitation of the system away from thermal equilibrium. Although the approach is not universal, in cases where it is valid it returns a complete set of positive maps for the dynamical evolution of a quantum system at all times. © IOP Publishing Ltd and Deutsche Physikalische Gesellschaft.
More details from the publisher
More details

Ultrashort pulse characterization by spectral shearing interferometry with spatially chirped ancillae.

Opt Express 17:21 (2009) 18983-18994

Authors:

Tobias Witting, Dane R Austin, Ian A Walmsley

Abstract:

We report a new version of spectral phase interferometry for direct electric field reconstruction (SPIDER), in which two spatially chirped ancilla fields are used to generate a spatially encoded SPIDER interferogram. We dub this new technique Spatially Encoded Arrangement for Chirped ARrangement for SPIDER (SEA-CAR-SPIDER). The single shot interferogram contains multiple shears, the spectral amplitude of the test pulse, and the reference phase, which is accurate for broadband pulses. The technique enables consistency checking through the simultaneous acquisition of multiple shears and offers a simple and precise calibration method. All calibration parameters--the shears, and the upconversionfrequency--can be accurately obtained from a single calibration trace.
More details from the publisher
More details

Theoretical and experimental analysis of quantum path interferences in high-order harmonic generation

Phys. Rev. A American Physical Society 80 (2009) 033817-033817

Authors:

T Auguste, P Salières, AS Wyatt, A Monmayrant, IA Walmsley, E Cormier, A Zaïr, M Holler, A Guandalini, F Schapper, J Biegert, L Gallmann, U Keller

Abstract:

We present theoretical and experimental studies on quantum path interferences in high-order harmonic generation. Simulations of the single-atom response allow us to calculate the different quantum paths contributions; their relative phases and the resulting interferences can be finely controlled through the laser intensity that provides an efficient means for controlling the electron trajectories with an accuracy on the ten attoseconds time scale. Simulations of the macroscopic response demonstrate the need of spatial and spectral filtering of the harmonic beam in order to observe the interferences between the two shortest quantum paths. Our numerical results are in very good agreement with experimental data. These investigations represent a step toward the full characterization and control of the atomic harmonic dipole.
More details from the publisher
Details from ORA
More details

Pagination

  • First page First
  • Previous page Prev
  • …
  • Page 28
  • Page 29
  • Page 30
  • Page 31
  • Current page 32
  • Page 33
  • Page 34
  • Page 35
  • Page 36
  • …
  • Next page Next
  • Last page Last

Footer Menu

  • Contact us
  • Giving to the Dept of Physics
  • Work with us
  • Media

User account menu

  • Log in

Follow us

FIND US

Clarendon Laboratory,

Parks Road,

Oxford,

OX1 3PU

CONTACT US

Tel: +44(0)1865272200

University of Oxfrod logo Department Of Physics text logo
IOP Juno Champion logo Athena Swan Silver Award logo

© University of Oxford - Department of Physics

Cookies | Privacy policy | Accessibility statement

Built by: Versantus

  • Home
  • Research
  • Study
  • Engage
  • Our people
  • News & Comment
  • Events
  • Our facilities & services
  • About us
  • Giving to Physics
  • Current students
  • Staff intranet