Wei Bing Lu
Southeast University
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Publication
Featured researches published by Wei Bing Lu.
Journal of Physics D | 2014
Jian Wang; Wei Bing Lu; Xiao Bing Li; Zhenhua Ni; Teng Qiu
The propagation properties of edge mode graphene surface plasmon polaritons (EGSPs) guided along a nanoribbon coplanar waveguide coupled with a nanoring are investigated, both in parallel and serial cascades. Strong coupling of EGSPs between the nanoribbon and nanoring appears at the resonance frequencies. Further investigation shows that EGSPs can be supported by nanorings, even though the radiuses are very small. The resonance frequencies can be tuned by the geometric parameters and the doping level of graphene. A Y-shape switch based on parallel coupled structures is presented as an application. Various potential planar devices are expected to derive from the prototype coupled structures.
Journal of Physics D | 2014
Jian Wang; Wei Bing Lu; Xiao Bing Li; Xiao Feng Gu; Zheng Gao Dong
Plasmonic metamaterial based on the graphene complementary split ring resonators is introduced and investigated. The underlying mechanisms of the resonances are explored in detail when such metamaterial is illuminated by horizontal and vertical polarization infrared lights, which provides us with a better understanding of the phenomenon of spectral responses. With its more pronounced spectral response and a tunability that is more conveniently recognized, such a metamaterial has great prospects for being adopted for practical applications in the future.
Journal of Physics D | 2017
Wei Bing Lu; Ji Long Liu; Jin Zhang; Jian Wang; Zhen Guo Liu
A fourfold symmetric graphene-based complementary metasurface featuring a polarization-independent transparency window is proposed and numerically analysed in this paper. The unit cell of the metamaterial consists of a monolayer graphene perforated with a cross and four identical split-ring resonators deposited on a substrate. Our analysis shows that the transparency window can be interpreted as a plasmonic analogy of Autler–Townes splitting. The polarization independence is achieved due to the fourfold symmetry of graphenes complementary structure. In addition, the frequency range of the transparency window can be dynamically tuned over a broad band by changing the chemical potential of graphene, and the width of the transparency window can also be controlled by changing the split-gap orientation. This work may lead to potential applications in many area, such as slow-light devices and optical sensing.
IEEE Photonics Technology Letters | 2016
Jian Wang; Wei Bing Lu; Xiao Bing Li; Ji Long Liu
This letter proposes a new approach for controlling the terahertz wavefront using simply constructed equipment, consisting of graphene-based Fabry-Pérot cavities (GFPCs) arranged regularly in one dimension. The reflection spectrum of each cavity can be efficiently tailored by changing the doping level of the graphene. Specifically, more than 270°, 240°, and 180° of phase shifts are produced near the first, second, and third resonances, respectively. With such a significant degree of freedom for the response phases, we demonstrate three different strategies to organize the array, viz., 4, 3, and 2 GFPC cells-based periodic lattices were designed, respectively, to generate particular propagating directions of the reflection waves. Compared with the metal resonant structures, our scheme is convenient for obtaining the multi-scanning angle and multi-frequency properties. The GFPC structure and the associated arrangement approach are a new addition to the wavefront control toolbox, which is promising for future innovative applications in terahertz sensing, communication, and spectrum splitting.
Optoelectronic Imaging and Multimedia Technology III | 2014
Xiao Feng Gu; Wei Bing Lu; Xiao Bing Li; Jian Wang; Jun Hu
Plasmons induced by topological insulator (TI) Bi2Se3 micro-ribbon arrays have been experimentally observed recently (Nature nanotechnology 2013, 8, 556-560). In this letter, the surface plasmons excited by TI Bi2Se3 micro-disk arrays are investigated by the methods of full-wave numerical simulations. Numerical simulation results show that thin Bi2Se3 micro-disk arrays can support dipolar plasmon resonances in the terahertz (THz) regimes and the absorptions can be tuned by the structure parameters. In addition to the plasmon mode, two phonon-mode responses are also observed, which confirms the experimental results of micro-ribbon arrays. Our work further proves that TI can be a good candidate of plasmonic platform.
progress in electromagnetic research symposium | 2016
Ji Long Liu; Wei Bing Lu; Jian Wang; Xiao Bing Li; Zhen Guo Liu; Wu Yang
Two dimensional graphene metasurfaces working in terahertz regime are proposed to realize dynamical control of wavefront with high efficiency. Each graphene metasurface consists of an array of graphene rectangle patches on square grounded dielectric substrate. The reflection amplitude and phase of graphene rectangle patches are investigated with different patch lengths and widths. It is found that a full phase tuning range from 0 to 2π, together with sufficiently high amplitude (larger than 86%), can be achieved by only changing the geometry size of graphene patches. Different types of wavefront manipulations can be realized by properly arranging these graphene patches. As a proof of principle, 2D anomalous reflection and vortex waves are demonstrated in this paper.
International Journal of Optics | 2016
Xiao Bing Li; Hong Ju Xu; Wei Bing Lu; Jian Wang
Due to its tunability of conductivity, graphene can be considered as a novel epsilon-near-zero (ENZ) material. Based on this property, we propose a wave splitter using graphene. Simulation results show that the circular surface plasmon polariton waves excited by a point source can be transferred to narrow beams through a graphene-based wave splitter, which is formed by a polygonal contour of the ENZ graphene layer. The number of beams can be easily controlled by adjusting the shape of the polygonal ENZ graphene layer, and the operation frequency can also be chosen.
asia pacific microwave conference | 2015
Jia Jiong Shan; Jian Wang; Wei Bing Lu
An efficient hybrid technique that combines the characteristic basis function method (CBFM) and the finite element method (FEM) is presented for analyzing the scattering of large-scale array structures which may be dielectrics or metal objects. By utilizing the hybrid method, the whole array structures are divided into several blocks, and a set of the new characteristic basis functions (CBFs) independent of the incidence are generated. Furthermore, the singular value decomposition (SVD) leads to a significant reduced matrix. Numerical results are provided to demonstrate the efficiency and accuracy of the method.
asia pacific microwave conference | 2015
Xiao Bing Li; Wei Bing Lu; Jian Wang; Bao Hu Huang; Hao Chen
A reflectarray possessing symmetrically dual-beam scanning capability is proposed, which is based on graphene reflective cells operating at Terahertz (THz). Due to the tunability of graphenes conductivity, the phase distribution of the reflectarray can be controlled and then the electromagnetic properties of the surface can be altered. For simplicity, the reflectarray is composed of two types of cells with different phase responses, 0 and pi, which correspond to two different chemical potentials that can be obtained by applying different biased voltages. By designing the sequence of cells, the beam can be steered and the direction can be scanned in a range via switching between different phase distributions of the reflectarray. Simulation results and theoretical calculations agree well, demonstrating the possibility of beam scanning using graphene based reflectarray. This new electronically beam scanning mechanism offer an alternative to a conventional phased array.
2017 Sixth Asia-Pacific Conference on Antennas and Propagation (APCAP) | 2017
Jin Zhang; Wei Bing Lu; Hao Chen; Zhen Guo Liu