Wu Jun
Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, No. 390 Qinghe Road, Jiading District/PO Box 800-211, Shanghai, People's Republic of China.
J Synchrotron Radiat. 2018 Mar 1;25(Pt 2):419-424. doi: 10.1107/S1600577517017143. Epub 2018 Feb 6.
The polarization-independent enhanced absorption effect of graphene in the near-infrared range is investigated. This is achieved by placing a graphene square array on top of a dielectric square array backed by a two-dimensional multilayer grating. Total optical absorption in graphene can be attributed to critical coupling, which is achieved through the combined effect of guided-mode resonance with the dielectric square array and the photonic band gap with the two-dimensional multilayer grating. To reveal the physical origin of such a phenomenon, the electromagnetic field distributions for both polarizations are illustrated. The designed graphene absorber exhibits near-unity polarization-independent absorption at resonance with an ultra-narrow spectrum. Moreover, the polarization-independent absorption can be tuned simply by changing the geometric parameters. The results may have promising potential for the design of graphene-based optoelectronic devices.
研究了石墨烯在近红外范围内与偏振无关的增强吸收效应。这是通过将石墨烯方形阵列放置在由二维多层光栅支撑的电介质方形阵列之上实现的。石墨烯中的总光吸收可归因于临界耦合,这是通过电介质方形阵列的导模共振与二维多层光栅的光子带隙的联合效应实现的。为了揭示这种现象的物理起源,给出了两种偏振的电磁场分布。所设计的石墨烯吸收器在共振时表现出接近单位的与偏振无关的吸收,且具有超窄光谱。此外,通过改变几何参数可以简单地调节与偏振无关的吸收。这些结果在基于石墨烯的光电器件设计方面可能具有广阔的应用前景。