Czesław Radzewicz Warsaw University Poland Konrad Banaszek Nicolaus Copernicus University Toruń, Poland Alex Lvovsky University of Calgary Alberta, Canada.

Slides:



Advertisements
Similar presentations
Vulcan Front End OPCPA System
Advertisements

Key CLARITY technologies II – Four-Wave Mixing wavelength conversion National and Kapodistrian University of Athens Department of Informatics and Telecommunications.
Multi-wave Mixing In this lecture a selection of phenomena based on the mixing of two or more waves to produce a new wave with a different frequency, direction.
Entanglement-enhanced communication over a correlated-noise channel
The efficient generation of anti- Stokes radiation at multiwave forward and backward stimulated Raman scattering Victor G. Bespalov, Russian Research Center.
Simultaneously Stokes and anti-Stokes Raman amplification in silica fiber Victor G. Bespalov Russian Research Center "S. I. Vavilov State Optical Institute"
Fundamentals of Photonics
Parametric Down-conversion and other single photons sources December 2009 Assaf Halevy Course # 77740, Dr. Hagai Eisenberg 1.
The scaling of LWFA in the ultra-relativistic blowout regime: Generation of Gev to TeV monoenergetic electron beams W.Lu, M.Tzoufras, F.S.Tsung, C. Joshi,
Alfred U’Ren Daryl Achilles Peter Mosley Lijian Zhang Christine Silberhorn Konrad Banaszek Michael G. Raymer Ian A. Walmsley The Center for Quantum Information.
Collinear interaction of photons with orbital angular momentum Apurv Chaitanya N Photonics science Laboratory, PRL.
Electron wavefunction in strong and ultra-strong laser field One- and two-dimensional ab initio simulations and models Jacek Matulewski Division of Collision.
Shanhui Fan, Shanshan Xu, Eden Rephaeli
Many-body dynamics of association in quantum gases E. Pazy, I. Tikhonenkov, Y. B. Band, M. Fleischhauer, and A. Vardi.
Stimulated scattering is a fascinating process which requires a strong coupling between light and vibrational and rotational modes, concentrations of different.
Combined Stokes-anti-Stokes Raman amplification in fiber Victor G. Bespalov All Russian Research Center "S. I. Vavilov State Optical Institute" Nikolai.
In Search of the “Absolute” Optical Phase
Space-time positioning at the quantum limit with optical frequency combs Workshop OHP September 2013 Valérian THIEL, Pu JIAN, Jonathan ROSLUND, Roman SCHMEISSNER,
Optimizing SHG Efficiency
Squeezed Light and Quantum Imaging with Four-Wave Mixing in Hot Atoms.
Quasi-phase matching transient SRS generation Victor G. Bespalov Russian Research Center "S. I. Vavilov State Optical Institute" Nikolai S. Makarov Saint-Petersburg.
TeraHertz Kerr effect in GaP crystal
Koji Arai – LIGO Laboratory / Caltech LIGO-G v2.
Generation of short pulses
Quantum enhanced metrology R. Demkowicz-Dobrzański 1, K. Banaszek 1, U. Dorner 2, I. A. Walmsley 2, W. Wasilewski 1, B. Smith 2, J. Lundeen 2, M. Kacprowicz.
Ch3: Lightwave Fundamentals E = E o sin( wt-kz ) E = E o sin( wt-kz ) k: propagation factor = w/v k: propagation factor = w/v wt-kz : phase wt-kz : phase.
Universal Optical Operations in Quantum Information Processing Wei-Min Zhang ( Physics Dept, NCKU )
Narrow transitions induced by broad band pulses  |g> |f> Loss of spectral resolution.
Niels Bohr Institute Copenhagen University Eugene PolzikLECTURE 5.
Analysis of quantum entanglement of spontaneous single photons
Many-body dynamics of association in quantum gases E. Pazy, I. Tikhonenkov, Y. B. Band, M. Fleischhauer, and A. Vardi.
A quantum optical beam n Classically an optical beam can have well defined amplitude AND phase simultaneously. n Quantum mechanics however imposes an uncertainty.
Space-time analogy True for all pulse/beam shapes Paraxial approximation (use of Fourier transforms) Gaussian beams (q parameters and matrices) Geometric.
TeV Particle Astrophysics August 2006 Caltech Australian National University Universitat Hannover/AEI LIGO Scientific Collaboration MIT Corbitt, Goda,
NOISE IN OPTICAL SYSTEMS F. X. Kärtner High-Frequency and Quantum Electronics Laboratory University of Karlsruhe.
Pure-state, single-photon wave-packet generation by parametric down conversion in a distributed microcavity M. G. Raymer, Jaewoo Noh* Oregon Center for.
Intra-cavity Pulse Shaping of Mode-locked Oscillators Shai Yefet, Naaman Amer and Avi Pe’er Department of physics and BINA Center of nano-technology, Bar-Ilan.
Pulse confinement in optical fibers with random dispersion Misha Chertkov (LANL) Ildar Gabitov (LANL) Jamey Moser (Brown U.)
Photon Efficiency Measures & Processing Dominic W. Berry University of Waterloo Alexander I. LvovskyUniversity of Calgary.
Frequency and time... dispersion- cancellation, optical phase, etc. Dispersion cancellation in an HOM interferometer –(more "collapse versus correlations")
Frequency Dependent Squeezing Roadmap toward 10dB
LONG-LIVED QUANTUM MEMORY USING NUCLEAR SPINS A. Sinatra, G. Reinaudi, F. Laloë (ENS, Paris) Laboratoire Kastler Brossel A. Dantan, E. Giacobino, M. Pinard.
Characterisation of non-classical light sources for quantum information technologies Wojciech Wasilewski Michał Karpiński Piotr Wasylczyk Czesław Radzewicz.
Engineering entanglement: How and how much? Alfred U’ren Pablo Londero Konrad Banaszek Sascha Wallentowitz Matt Anderson Christophe Dorrer Ian A. Walmsley.
MIT Optics & Quantum Electronics Group Seeding with High Harmonics Franz X. Kaertner Department of Electrical Engineering and Computer Science and Research.
S. ChelkowskiSlide 1WG1 Meeting, Birmingham 07/2008.
Under the Influence of Spectral Entanglement: Polarization-Entanglement Swapping and Fusion Gates Travis Humble * and Warren Grice, Oak Ridge National.
LPHYS’07 – Leon – August 22 nd 2007 Alessandro Zavatta, Valentina Parigi, Myungshik Kim, and Marco Bellini Istituto Nazionale di Ottica Applicata (INOA)
Pulse confinement in optical fibers with random dispersion Misha Chertkov (LANL) Ildar Gabitov (LANL) Jamey Moser (Brown U.)
Pablo Barberis Blostein y Marc Bienert
Operated by Los Alamos National Security, LLC for NNSA Dynamics of modulated beams Operated by Los Alamos National Security, LLC, for the U.S. Department.
Picosecond Pulse-Pumped Efficient Optical Parametric Amplifier for Non-Chirped Femtosecond Pulses Hua Yang Notes: 1.Simulations performed with 10 fs and.
Multimode quantum optics Nicolas Treps Claude Fabre Gaëlle Keller Vincent Delaubert Benoît Chalopin Giuseppe Patera Virginia d’Auria Jean-François Morizur.
Space-time analogy True for all pulse/beam shapes
Michael Scalora U.S. Army Research, Development, and Engineering Center Redstone Arsenal, Alabama, & Universita' di Roma "La Sapienza" Dipartimento.
Sources, Memories, Detectors Ryan Camacho, Curtis Broadbent, Michael Pack, Praveen Vudya Setu, Greg Armstrong, Benjamin Dixon and John Howell University.
Gaussian pulses Bandwidth limited: Pulse duration FWHM Fourier transform Bandwidth duration product Chirped Gaussian Fourier Transform.
Optical and Quantum Communications Group June 9, 2005 Three Themes for Theory Research: Gaussian States, Coherent Laser Radars, and Multi-Photon Detectors.
Carmen Porto Supervisor: Prof. Simone Cialdi Co-Supervisor: Prof. Matteo Paris PhD school of Physics.
教育部顧問室光通訊系統教育改進計畫台科大 師大 淡江 東南 萬能 教育部顧問室光通訊系統教育改進計畫 台科大 師大 淡江 東南 萬能 3. 光調變器之性能量測 (Modulation Measurements) Modulation measurement is essential in characterizing.
Multi-photon Absorption Rates for N00N States William Plick, Christoph F. Wildfeuer, Jonathan P. Dowling: Hearne Institute for Theoretical Physics, LSU.
Sense and sensitivity:,,robust’’ quantum phase estimation R. Demkowicz-Dobrzański 1, K. Banaszek 1, U. Dorner 2, I. A. Walmsley 2, W. Wasilewski 1, B.
Combined Time Frequency Detection (TFD) by Single Shot Four Wave Mixing Yehiam Prior and Andrey Shalit Department of Chemical Physics Weizmann Institute.
Conservation of Vacuum in an Interferometer
Four wave mixing in submicron waveguides
Quantum noise reduction using squeezed states in LIGO
Quantum Information with Continuous Variables
Squeezed Input Interferometer
Optical-phase conjugation in difference-frequency generation
Integrated photonic platform for quantum information with continuous variables by Francesco Lenzini, Jiri Janousek, Oliver Thearle, Matteo Villa, Ben Haylock,
Presentation transcript:

Czesław Radzewicz Warsaw University Poland Konrad Banaszek Nicolaus Copernicus University Toruń, Poland Alex Lvovsky University of Calgary Alberta, Canada Squeezing eigenmodes in parametric down- conversion National Laboratory for Atomic, Molecular, and Optical Physics, Toruń, Poland Wojciech Wasilewski

Agenda Classical description Input-output relations Bloch-Messiah reduction Single-pair generation limit High-gain regime Optimizing homodyne detection

Fiber optical parametric amplifier Pump remains undepleted Pump does not fluctuate

Linear propagation High order effects Group velocity dispersion Group velocity Phase velocity

Three wave mixing k p,  p  p =  +  ’ k,  k ’,  ’

Classical optical parametric amplifier [See for example: M. Matuszewski, W. Wasilewski, M. Trippenbach, and Y. B. Band, Opt. Comm. 221, 337 (2003)]  (2) Linear propagation 3WM Interaction strength

Input-output relations Quantization: etc.

Decomposition As the commutation relations for the output field operators must be preserved, the two integral kernels can be decomposed using the Bloch-Messiah theorem: S. L. Braunstein, Phys. Rev. A 71, (2005). The Bloch-Messiah theorem allows us to introduce eigenmodes for input and output fields:

Squeezing modes The characteristic eigenmodes evolve according to: describe modes that are described by pure squeezed states tell us what modes need to be seeded to retain purity 

Squeezing modes  The operation of an OPA is completely characterized by: the mode functions  n  and  n the squeezing parameters  n

Single pair generation regime k p,  p  p =  +  ’ L k,  k ’,  ’ Amplitude S  sin(  k L/2)/  k  k = k p -k-k’

Single pair generation regime ’’  pp Amplitude S  Pump x sin(  k L/2)/  k

Single pair generation ’’  pp S( ,  ’ )=e i… ,  ’ |out  =Σ j f j (  )g j (  ’ )

Gaussian approximation of S 22 11    k=0 1+2=p1+2=p

“Classic” approach Schmidt decomposition for a symmetric two-photon wave function: C. K. Law, I. A. Walmsley, and J. H. Eberly, Phys. Rev. Lett. 84, 5304 (2000) We can now define eigenmodes which yields: The spectral amplitudes characterize pure squeezing modes The wave function up to the two-photon term: W. P. Grice and I. A. Walmsley, Phys. Rev. A 56, 1627 (1997); T. E. Keller and M. H. Rubin, Phys. Rev A 56, 1534 (1997)

Intense generation regime 1 mm waveguide in BBO 24 fs 400nm

Squeezing parameters RMS quadrature squeezing: e -2 

Spectral intensity of eigenmodes

Input and ouput modes

First mode vs. pump intensity

Homodyne detection

Noise budget

Detected squeezing vs. LO duration 1/L NL = ss

Contribution of various modes MnMn n 15fs  LO 30fs 50fs

Optimal LOs 3 4 5

Optimizing homodyne detection – SHG PDC

Conclusions The Bloch-Messiah theorem allows us to introduce eigenmodes for input and output fields For low pump powers, usually a large number of modes becomes squeezed with similar squeezing parameters Any superposition of these modes (with right phases!) will exhibit squeezing The shape of the modes changes with the increasing pump intensity! In the strong squeezing regime, carefully tailored local oscillator pulses are needed. Experiments with multiple beams (e.g. generation of twin beams): fields must match mode-wise. Similar treatment applies also to Raman scattering in atomic vapor WW, A. I. Lvovsky, K. Banaszek, C. Radzewicz, quant-ph/ A. I. Lvovsky, WW, K. Banaszek, quant-ph/ WW, M.G. Raymer, quant-ph/