DocumentCode :
2228157
Title :
Improved measurement of multimode squeezed light via eigenmode decomposition
Author :
Bennink, R.S. ; Boyd, R.W.
Author_Institution :
Inst. of Opt., Rochester Univ., NY, USA
fYear :
2002
fDate :
19-24 May 2002
Firstpage :
203
Abstract :
Summary form only given. We find that the quantum statistics of multimode squeezed fields are easily obtained and simply understood via an eigenmode description. The eigenmode description of squeezed light is based on our finding that the squeezing matrix /spl Gamma/ can always be diagonalized by a physical transformation of the fields - either a change of basis or linear unitary evolution. Each eigenmode possesses single-mode squeezing statistics, and the corresponding eigenvalue is the effective squeezing parameter for that mode. The squeezing eigenmodes are completely uncoupled from one another (at the quantum level) and represent independent channels (pixels) useful for carrying noise-sensitive data. We show how an eigenmode description of a squeezed field allows one to easily calculate noise statistics of the field upon diffraction and/or propagation through any sequence of lossless linear optical elements. We further show that the eigenmodes define the shape of the local oscillator which must be used in order to obtain the smallest quantum noise in balanced homodyne or heterodyne measurements. Finally, we use the theory to model pulsed optical parametric downconversion in a /spl chi//sup (2)/ medium with a classical pump field of arbitrary bandwidth, allowing for the possibility of phase and/or group velocity mismatch.
Keywords :
eigenvalues and eigenfunctions; heterodyne detection; homodyne detection; optical frequency conversion; optical squeezing; quantum noise; quantum statistical mechanics; balanced homodyne measurements; classical pump field; diffraction; effective squeezing parameter; eigenmode decomposition; eigenmode description; group velocity mismatch; heterodyne measurements; independent channels; linear unitary evolution; local oscillator; lossless linear optical elements; multimode squeezed fields; multimode squeezed light; noise statistics; noise-sensitive data; phase mismatch; physical transformation; pixels; propagation; pulsed optical parametric downconversion; quantum level; quantum statistics; single-mode squeezing statistics; smallest quantum noise; squeezing matrix; Eigenvalues and eigenfunctions; Optical frequency conversion;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Quantum Electronics and Laser Science Conference, 2002. QELS '02. Technical Digest. Summaries of Papers Presented at the
Conference_Location :
Long Beach, CA, USA
Print_ISBN :
1-55752-708-3
Type :
conf
DOI :
10.1109/QELS.2002.1031313
Filename :
1031313
Link To Document :
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