Sheridan JT, Lawrence JR
School of Physics, Faculty of Science, Dublin Institute of Technology, Ireland.
J Opt Soc Am A Opt Image Sci Vis. 2000 Jun;17(6):1108-14. doi: 10.1364/josaa.17.001108.
The standard one-dimensional diffusion equation is extended to include nonlocal temporal and spatial medium responses. How such nonlocal effects arise in a photopolymer is discussed. It is argued that assuming rapid polymer chain growth, any nonlocal temporal response can be dealt with so that the response can be completely understood in terms of a steady-state nonlocal spatial response. The resulting nonlocal diffusion equation is then solved numerically, in low-harmonic approximation, to describe grating formation. The effects of the diffusion rate, the rate of polymerization, and a new parameter, the nonlocal response length, are examined by using the predictions of the model. By applying the two-wave coupled-wave model, assuming a linear relationship between polymerized concentration and index modulation, the resulting variation of the grating diffraction efficiency is examined.
标准的一维扩散方程被扩展以包含非局部的时间和空间介质响应。讨论了这种非局部效应在光聚合物中是如何产生的。有人认为,假设聚合物链快速生长,任何非局部时间响应都可以得到处理,从而可以根据稳态非局部空间响应来完全理解该响应。然后,在低谐波近似下对所得的非局部扩散方程进行数值求解,以描述光栅形成。通过使用该模型的预测结果,研究了扩散速率、聚合速率以及一个新参数——非局部响应长度的影响。通过应用双波耦合波模型,假设聚合浓度与折射率调制之间存在线性关系,研究了光栅衍射效率的由此产生的变化。