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ORIENTATIONALLY ENHANCED PHOTOREFRACTIVE EFFECT IN POLYMERS
Author(s): MOERNER WE, SILENCE SM, HACHE F, BJORKLUND GC
Source: JOURNAL OF THE OPTICAL SOCIETY OF AMERICA B-OPTICAL PHYSICS    Volume: 11    Issue: 2    Pages: 320-330    Published: FEB 1994  
Times Cited: 375     References: 34     
Abstract: We present experimental data that show that the greatly improved performance of a new class of photorefractive polymers [see Donckers ct al., Opt. Lett. 18, 1044 (1993)] is too large to be explained by the simple electro-optic photorefractive effect alone. In these materials a photoconducting polymer host is doped with a small concentration of a sensitizer and a large concentration of a nonlinear optical chromophore that has orientational mobility at ambient temperatures. Ne present a theoretical model for a new orientational enhancement mechanism in which both the birefringence of the sample and the electro-optic coefficient are periodically modulated by the space-charge field itself. The predictions of this model for the size of the enhancement (which is greater than an order of magnitude in diffraction efficiency), the polarization anisotropy between p-polarized and s-polarized readout, and the presence of index modulation at twice the grating wave vector are in goad agreement with the measured properties. This orientational enhancement mechanism should be important in any system in which the nonlinear optical chromophores have sufficient orientational mobility and dipole moment so as to be oriented by the space-charge field itself.
Document Type: Article
Language: English
Reprint Address: MOERNER, WE (reprint author), IBM CORP, DIV RES, ALMADEN RES CTR, SAN JOSE, CA 95120 USA
Publisher: OPTICAL SOC AMER, 2010 MASSACHUSETTS AVE NW, WASHINGTON, DC 20036
Subject Category: Optics
IDS Number: MX451
ISSN: 0740-3224
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