论文标题
有限3D GAAS光子带隙晶体的反射率
Reflectivity of Finite 3D GaAs Photonic Band Gap Crystals
论文作者
论文摘要
我们研究了三维(3D)光子带隙晶体的光反射率,厚度增加。晶体由带有纳米棒阵列的GAA板组成,这些纳米棒阵列由高级堆叠方法组装到高质量的3D木架结构中。我们观察到激烈而广泛的反射率峰,与光子条带结构中的宽间隙相对应的停止条带。即使在几个晶体层,最大反射率也很快达到了高值。值得注意的是,停止带的带宽几乎不会随着晶体厚度的增加而降低,这与FDTD模拟良好一致。这种行为与在弱相互作用的3D光子晶体中观察到的大变化明显不同。几乎恒定的带宽和高反射率通过多个Bragg干扰进行了合理化,这些干扰发生在强烈相互作用的光子带隙晶体中,从而从多个相互的晶格矢量散射,尤其是从倾斜的晶格矢量散布,尤其是与较长的晶体平行的倾斜,从而经历了任何有限的尺寸。我们的新见解对3D光子带隙晶体的应用产生了有利的后果,特别是因为即使薄结构也揭示了整个带隙功能,包括将量子位屏蔽真空波动的设备。
We study the optical reflectivity of three-dimensional (3D) photonic band gap crystals with increasing thickness. The crystals consist of GaAs plates with nanorod arrays that are assembled by an advanced stacking method into high-quality 3D woodpile structures. We observe intense and broad reflectivity peak with stop bands that correspond to a broad gap in the photonic band structures. The maximum reflectivity quickly reaches high values even for a few crystal layers. Remarkably, the bandwidth of the stop bands hardly decreases with increasing crystal thickness, in good agreement with FDTD simulations. This behavior differs remarkably from the large changes observed earlier in weakly interacting 3D photonic crystals. The nearly constant bandwidth and high reflectivity are rationalized by multiple Bragg interference that occurs in strongly interacting photonic band gap crystals, whereby the incident light scatters from multiple reciprocal lattice vectors simultaneously, in particular from oblique ones that are parallel to a longer crystal dimension and thus experience hardly any finite size effects. Our new insights have favorable consequences for the application of 3D photonic band gap crystals, notably since even thin structures reveal the full band gap functionality, including devices that shield quantum bits from vacuum fluctuations.