Digaum Jennefir L, Pazos Javier J, Chiles Jeffrey, D'Archangel Jeffrey, Padilla Gabriel, Tatulian Adrian, Rumpf Raymond C, Fathpour Sasan, Boreman Glenn D, Kuebler Stephen M
Opt Express. 2014 Oct 20;22(21):25788-804. doi: 10.1364/OE.22.025788.
Spatially-variant photonic crystals (SVPCs), in which the orientation of the unit cell changes as a function of position, are shown to be capable of abruptly controlling light beams using just low index materials and can be made to have high polarization selectivity. Multi-photon direct laser writing in the photo-polymer SU-8 was used to fabricate three-dimensional SVPCs that direct the flow of light around a 90 degree bend. The lattice spacing and fill factor were maintained nearly constant throughout the structure. The SVPCs were characterized at a wavelength of 2.94 μm by scanning the faces with optical fibers and the results were compared to electromagnetic simulations. The lattices were shown to direct infrared light of one polarization through sharp bends while the other polarization propagated straight through the SVPC. This work introduces a new scheme for controlling light that should be useful for integrated photonics.
空间变化光子晶体(SVPCs)的晶胞取向随位置变化,研究表明其仅使用低折射率材料就能突然控制光束,并且能够实现高偏振选择性。利用在光聚合物SU-8中的多光子直接激光写入技术制备了三维SVPCs,该结构能使光在90度弯曲处传播。在整个结构中,晶格间距和填充因子几乎保持恒定。通过用光纤扫描表面,在波长为2.94μm的条件下对SVPCs进行了表征,并将结果与电磁模拟进行了比较。结果表明,该晶格能使一种偏振的红外光通过急剧弯曲,而另一种偏振则直接穿过SVPC传播。这项工作引入了一种新的光控制方案,对集成光子学应该是有用的。