Sun Zhanshan, Zheng Yuejun, Fu Yunqi
College of Electronic Science and Technology, National University of Defense Technology, Changsha 410072, China.
Materials (Basel). 2019 Sep 21;12(19):3082. doi: 10.3390/ma12193082.
Here, we report a graphene-based electric field enhancement structure achieved by several adjacent metal nanoribbons which form the hot spots of the electric field and thus promote the absorption of the single layered graphene below the hot spots. Based on the tunability of the graphene's Fermi level, the absorption rate can be modulated from near 100% to 35% under low electrostatic gating, leading to a 20 dB modulation depth of reflectance. Compared with the existing near infrared spatial light modulators such as optical cavities integrated with graphene and other structures utilizing patterned or highly doped graphene, our design has the advantages of strong optical field enhancement, low power dissipation and high modulation depth. The proposed electro-optic modulator has a promising potential for developing optical communication and exploiting big data interaction systems.
在此,我们报道了一种基于石墨烯的电场增强结构,它由几条相邻的金属纳米带构成,这些纳米带形成电场热点,从而促进热点下方单层石墨烯的吸收。基于石墨烯费米能级的可调性,在低静电门控下,吸收率可从近100%调制到35%,导致反射率有20 dB的调制深度。与现有的近红外空间光调制器,如与石墨烯集成的光学腔以及其他利用图案化或高掺杂石墨烯的结构相比,我们的设计具有光场增强强、功耗低和调制深度高的优点。所提出的电光调制器在发展光通信和开发大数据交互系统方面具有广阔的应用前景。