Poling and orientational relaxation: Comparison of nonlinear optical main-chain and side-chain polymers

被引:19
作者
Hagen, R
Zobel, O
Sahr, O
Biber, M
Eckl, M
Strohriegl, P
Eisenbach, CD
Haarer, D
机构
[1] Physikalisches Institut, Bayreuther Inst. F. M., University of Bayreuth
[2] Makromolekulare Chemie II, Bayreuther Inst. F. M., University of Bayreuth
[3] Makromolekulare Chemie I, Bayreuther Inst. F. M., University of Bayreuth
关键词
D O I
10.1063/1.363254
中图分类号
O59 [应用物理学];
学科分类号
摘要
We investigated both time and temperature dependence of chromophore movements by means of in situ second-harmonic generation (SHG) measurements. Using real-time detection of the SHG intensities during and after poling of various nonlinear-optical polymer films we observed differences between main-chain and side-chain polymers regarding the nonlinear coefficients d(33) and the glass transition dynamics. We present experimental data on new main-chain polymers with polar stilbene chromophores attached in the most common transverse position to the backbones (MC-T) or incorporated in a linear fashion where they are a part of the main-chain (MC-L). The side-chain polymer (SC) presented here has been developed for photorefractive applications and is a copolymer containing Disperse Red 1 and a photoconducting carbazole unit in the side chain. The influence of the macromolecular structure on the chromophore dynamics is striking. This is verified by means of in situ corona poling experiments and thermal experiments based on temperature ramps on poled polymers. MC-T and especially MC-L polymers show a better thermal stability of the chromophore orientation relative to the glass transition temperature than SC polymers; however, chromophores of main-chain polymers are, as can be expected, less mobile during the poling process. We obtained resonance enhanced nonlinear optical coefficients d(33) Of 100 pm/V in a SC polymer, 90 pm/V in a MC-T polymer, and 30 pm/V in a MC-L polymer. (C) 1996 American Institute of Physics.
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页码:3162 / 3166
页数:5
相关论文
共 15 条
[1]  
[Anonymous], 1991, INTRO NONLINEAR OPTI
[2]  
BLOEMBERGEN N, 1982, NONLINEAR OPTICS
[3]  
CHILTON JA, 1995, SPECIAL POLYM ELECT
[4]   POLYMERIC ELECTROOPTIC MODULATORS - MATERIALS SYNTHESIS AND PROCESSING [J].
DALTON, LR ;
HARPER, AW ;
WU, B ;
GHOSN, R ;
LAQUINDANUM, J ;
LIANG, ZY ;
HUBBEL, A ;
XU, CZ .
ADVANCED MATERIALS, 1995, 7 (06) :519-540
[5]   RELATIVE CONTRIBUTION OF THE ELECTRIC-FIELD-INDUCED 3RD-ORDER EFFECT TO 2ND-HARMONIC GENERATION IN POLED, DOPED, AMORPHOUS POLYMERS [J].
DHINOJWALA, A ;
WONG, GK ;
TORKELSON, JM .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA B-OPTICAL PHYSICS, 1994, 11 (09) :1549-1554
[6]   NONLINEAR OPTICALLY-ACTIVE POLYMETHACRYLATES WITH HIGH GLASS-TRANSITION TEMPERATURES [J].
ECKL, M ;
MULLER, H ;
STROHRIEGL, P ;
BECKMANN, S ;
ETZBACH, KH ;
EICH, M ;
VYDRA, J .
MACROMOLECULAR CHEMISTRY AND PHYSICS, 1995, 196 (01) :315-325
[7]   MAKER FRINGES - A DETAILED COMPARISON OF THEORY AND EXPERIMENT FOR ISOTROPIC AND UNIAXIAL CRYSTALS [J].
JERPHAGNON, J ;
KURTZ, SK .
JOURNAL OF APPLIED PHYSICS, 1970, 41 (04) :1667-+
[8]   HIGHLY EFFICIENT AND STABLE NONLINEAR OPTICAL POLYMERS VIA CHEMICAL CROSS-LINKING UNDER ELECTRIC-FIELD [J].
JUNGBAUER, D ;
RECK, B ;
TWIEG, R ;
YOON, DY ;
WILLSON, CG ;
SWALEN, JD .
APPLIED PHYSICS LETTERS, 1990, 56 (26) :2610-2612
[9]  
KOHLER W, 1991, MACROMOLECULES, V24, P4589
[10]  
Lytel R., 1988, NONLINEAR OPTICAL EL