Bernal M-P, Roussey M, Baida F I
Institut FEMTO-ST, Département d'Optique P.M. Duffieux CNRS UMR 6174, Université de Franche Comté 16 Route de Gray, 25030 Besançon Cedex, France.
J Microsc. 2008 Feb;229(Pt 2):264-9. doi: 10.1111/j.1365-2818.2008.01897.x.
In this paper, we present the optical response of a tunable lithium niobate photonic crystal (PC) using the electro-optic effect of the material. The band gap tunability is 300 times higher than what one could expect for a bulk lithium niobate device of the same characteristics. Theoretical calculations based on the finite-difference time domain technique have allowed us to determine the physical origin of this enhanced electro-optic coefficient. Indeed, the effective second-order susceptibility in the LN nanostructure increases, giving rise to an ultra-compact low-voltage photonic crystal modulator when it operates at its band edge. In addition, the theoretical and far-field transmission results are confirmed by near-field optical microscopy images of the structure at different excitation voltages.
在本文中,我们利用材料的电光效应展示了可调谐铌酸锂光子晶体(PC)的光学响应。其带隙可调性比具有相同特性的块状铌酸锂器件高出300倍。基于时域有限差分技术的理论计算使我们能够确定这种增强的电光系数的物理起源。实际上,铌酸锂纳米结构中的有效二阶极化率增加,当其在带边工作时会产生超紧凑的低电压光子晶体调制器。此外,通过该结构在不同激发电压下的近场光学显微镜图像证实了理论和远场传输结果。