DocumentCode :
1741777
Title :
A Green´s function approach to the dynamics-controlled truncation formalism: Derivation of the /spl chi//sup (3)/ equations of motion
Author :
Kwong, Nai H. ; Binder, Rolf
Author_Institution :
Opt. Sci. Center, Arizona Univ., Tucson, AZ, USA
fYear :
2000
fDate :
12-12 May 2000
Firstpage :
51
Lastpage :
52
Abstract :
Summary form only given. The dynamics-controlled truncation (DCT) formalism is a successful microscopic approach that gives a complete description of all coherent phenomena in optically excited semiconductors to certain low orders (e.g., /spl chi//sup (3)/) in the external field. Its most important application to date has been the elucidation of exciton-exciton correlation effects in four-wave-mixing experiments in the /spl chi//sup (3)/ regime. We have examined in detail the standard Feynman-Dyson perturbation theory diagrams for the (Keldysh path-ordered) Green´s functions corresponding to the interband polarization, the one-particle density matrix, and the coherent biexcitonic (four-point) correlation function. The Coulomb matrix elements for transitions between conduction and valence bands are excluded, and the initial state is taken to be the electron-hole vacuum. The crucial result from this examination is that these two conditions annihilate a vast class of order.
Keywords :
Green´s function methods; excitons; nonlinear optical susceptibility; /spl chi//sup (3)/ equations of motion; /spl chi//sup (3)/ regime; Coulomb matrix elements; Green´s function approach; dynamics-controlled truncation formalism; electron-hole vacuum; exciton-exciton correlation effects; external field; four-wave-mixing experiments; microscopic approach; one-particle density matrix; optically excited semiconductors; standard Feynman-Dyson perturbation theory diagrams; Absorption; Excitons; Green´s function methods; Optical pulse generation; Optical pulse shaping; Pulse width modulation; Resonance; Shape; Signal generators; Space vector pulse width modulation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Quantum Electronics and Laser Science Conference, 2000. (QELS 2000). Technical Digest
Conference_Location :
San Francisco, CA, USA
ISSN :
1094-5695
Print_ISBN :
1-55752-608-7
Type :
conf
Filename :
901604
Link To Document :
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