Hwang Ui-Jung, Choi Chil-Sung, Vuong Nguyen Quoc, Kim Nakjoong
Center for Organic Photorefractive Materials, Department of Chemistry, Hanyang University, Seoul 133-791, Korea.
J Chem Phys. 2005 Dec 22;123(24):244905. doi: 10.1063/1.2135786.
The space-charge field built in a polymeric photorefractive polymer was calculated by a simple method based on the oriented gas model. When anisotropic chromophores in a photorefractive polymer were exposed to an external field, they oriented preferentially to exhibit a birefringence. Then, under illumination of two coherent beams and an external field, they reoriented to form a photorefractive grating. During the formation of the grating, the chromophores were reoriented by the space-charge field as well as by the external applied field. The birefringence induced in the material by an external electric field was determined by measuring the transmittance of the sample which is placed between crossed polarizers, where birefringence depicts the orientation of the chromophores. By measuring the diffraction efficiency with a modified degenerate four-wave mixing setup, the index amplitude of the grating was determined. Finally, the space-charge field was determined by comparing the diffraction efficiency with the birefringence with respect to the applied electric field. In our study, the space-charge field was about 20% of the external applied field, which coincided with previous results obtained from our laboratory.
基于取向气体模型,采用一种简单方法计算了聚合物光折变聚合物中建立的空间电荷场。当光折变聚合物中的各向异性发色团受到外场作用时,它们优先取向以表现出双折射。然后,在两束相干光束和外场的照射下,它们重新取向形成光折变光栅。在光栅形成过程中,发色团通过空间电荷场以及外加场重新取向。通过测量置于正交偏振器之间的样品的透射率来确定外电场在材料中引起的双折射,其中双折射描述了发色团的取向。通过使用改进的简并四波混频装置测量衍射效率,确定了光栅的折射率幅度。最后,通过比较相对于外加电场的衍射效率和双折射来确定空间电荷场。在我们的研究中,空间电荷场约为外加场的20%,这与我们实验室先前得到的结果一致。