Pereyra Pedro, Simanjuntak Herbert P
Departamento de Ciencias Básicas, UAM-Azcapotzalco, Av. S. Pablo 180, C.P. 02200, Mexico D.F., Mexico.
Phys Rev E Stat Nonlin Soft Matter Phys. 2007 May;75(5 Pt 2):056604. doi: 10.1103/PhysRevE.75.056604. Epub 2007 May 7.
We study the space-time evolution of electromagnetic wave packets through optical superlattices. We present rigorous analytical solutions describing the multiple-scattering processes of Gaussian wave packets defined in the band gap and in the resonant energy regions. Following their space-time evolution, we obtain the Maxwell equations prediction for the time spent inside the superlattice. From a close and careful observation of the reflected and transmitted parts of Gaussian packets in a photonic band gap, we conclude unambiguously that the superluminal transmission and the Hartman effect are inherent properties of the electromagnetic theory. It is also shown that the theoretical predictions for the time spent inside an optical superlattice are in good agreement with the experimental results and the phase time predictions.
我们通过光学超晶格研究电磁波包的时空演化。我们给出了描述在带隙和共振能量区域中定义的高斯波包多重散射过程的严格解析解。追踪它们的时空演化,我们得到了麦克斯韦方程组对在超晶格中停留时间的预测。通过对光子带隙中高斯包反射和透射部分的仔细观察,我们明确得出超光速传输和哈特曼效应是电磁理论的固有特性。还表明,对于在光学超晶格中停留时间的理论预测与实验结果和相时预测吻合良好。