Yang Jiawen, Zhu Zhihong, Zhang Jianfa, Guo Chucai, Xu Wei, Liu Ken, Yuan Xiaodong, Qin Shiqiao
College of Advanced Interdisciplinary Studies, National University of Defense Technology, Changsha, 410073, People's Republic of China.
State Key Laboratory of High Performance Computing, National University of Defense Technology, Changsha, 410073, People's Republic of China.
Sci Rep. 2018 Feb 19;8(1):3239. doi: 10.1038/s41598-018-21705-2.
We propose a broadband terahertz absorber consisting of nonstructured graphene loaded with arrays of elliptic dielectric cylinders. The relative bandwidth for the absorption above 90% reaches about 65%. The working mechanism of broad bandwidth mainly comes from two aspects. One is that the nonstructured graphene loaded with elliptic dielectric cylinders provides multiple discrete graphene plasmon resonances with large relative frequency interval. The other is that, for each discrete resonance, there exists a set of continuous plasmon resonances because the width of the dielectric structure varies continuously and gradiently. The broadband terahertz absorber we demonstrate here, based on geometrically gradient dielectric structures and nonstructured graphene, avoids the graphene processing, which shows great potential applications in related devices.
我们提出了一种由加载有椭圆形电介质圆柱阵列的非结构化石墨烯构成的宽带太赫兹吸收体。吸收率高于90%时的相对带宽达到约65%。宽带的工作机制主要来自两个方面。一方面,加载有椭圆形电介质圆柱的非结构化石墨烯提供了具有较大相对频率间隔的多个离散石墨烯等离子体共振。另一方面,对于每个离散共振,由于电介质结构的宽度连续且梯度变化,存在一组连续的等离子体共振。我们在此展示的基于几何梯度电介质结构和非结构化石墨烯的宽带太赫兹吸收体,避免了石墨烯加工,在相关器件中显示出巨大的潜在应用价值。