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Dive into the research topics where Xiaopeng Shen is active.

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Featured researches published by Xiaopeng Shen.


Applied Physics Letters | 2012

Triple-band terahertz metamaterial absorber: Design, experiment, and physical interpretation

Xiaopeng Shen; Yan Yang; Yuanzhang Zang; Jianqiang Gu; Jiaguang Han; Tie Jun Cui

We demonstrate the design, characterization, and interference-theory interpretation of a terahertz triple-band metamaterial absorber (MA). The experiments show that the fabricated MA has three distinctive absorption peaks at 0.5, 1.03, and 1.71 THz with absorption rates of 96.4%, 96.3%, and 96.7%, respectively. We use the multi-reflection interference theory to investigate the physical insight of the proposed triple-band terahertz MA, which provides a design guideline for MA of such type. The theoretical predictions of the interference model have excellent agreements with experimental results. The designed multiband absorber is easy to manufacture and insensitive to incident polarizations with high absorption, which is favorable for various applications.


Applied Physics Letters | 2013

Ultrathin dual-band surface plasmonic polariton waveguide and frequency splitter in microwave frequencies

Xi Gao; Jin Hui Shi; Xiaopeng Shen; Hui Feng Ma; Wei Xiang Jiang; Lianming Li; Tie Jun Cui

We present an ultrathin dual-band plasmonic waveguide and frequency splitter experimentally based on designer surface plasmon polaritons (DSPPs) of planar composite periodic gratings. In such planar plasmonic metamaterials, the electromagnetic wave can be tightly confined around an ultrathin metallic grating, and the propagation of DSPPs strongly depends on the dispersion relation determined by the depth of groove. Based on such features, we design and fabricate an ultrathin composite grating to support two DSPP modes, which exhibit low bending loss in the bending surface plasmon polariton (SPP) waveguide. We further propose an ultrathin SPP frequency splitter by adjusting the groove depths of two branches. The experimental results are in good agreement to the numerical simulations.


Scientific Reports | 2015

High-order localized spoof surface plasmon resonances and experimental verifications.

Zhen Liao; Yu Luo; Antonio I. Fernández-Domínguez; Xiaopeng Shen; Stefan A. Maier; Tie Jun Cui

We theoretically demonstrated and experimentally verified high-order radial spoof localized surface plasmon resonances supported by textured metal particles. Through an effective medium theory and exact numerical simulations, we show the emergence of these geometrically-originated electromagnetic modes at microwave frequencies. The occurrence of high-order radial spoof plasmon resonances is experimentally verified in ultrathin disks. Their spectral and near-field properties are characterized experimentally, showing an excellent agreement with theoretical predictions. Our findings shed light into the nature of spoof localized surface plasmons, and open the way to the design of broadband plasmonic devices able to operate at very different frequency regimes.


Optics Express | 2015

Trapping surface plasmon polaritons on ultrathin corrugated metallic strips in microwave frequencies.

Yan Yang; Xiaopeng Shen; Pei Zhao; Hao Chi Zhang; Tie Jun Cui

It has been demonstrated that an ultrathin uniformly corrugated metallic strip is a good plasmonic waveguide in microwave and terahertz frequencies to propagate spoof surface plasmon polaritons (SPPs) with well confinement and small loss (Shen et al., PNAS 110, 40-45, 2013). Here, we propose a simple method to trap SPP waves on the ultrathin corrugated metallic strips in broad band in the microwave frequencies. By properly designing non-uniform corrugations with gradient-depth grooves, we show that the SPP waves are slowed down gradually and then reflected at pre-designed positions along the ultrathin metallic strip when the frequency varies. We design and fabricate the ultrathin gradient-corrugation metallic strip on a thin dielectric film. Both numerical simulation and measurement results validate the efficient trapping of SPP waves in broadband from 9 to 14 GHz. This proposal is a promising candidate for slow-wave devices in both microwave and terahertz regimes.


Optics Express | 2014

Multiple Fano resonances in spoof localized surface plasmons.

Zhen Liao; Bai Cao Pan; Xiaopeng Shen; Tie Jun Cui

We present the occurrence of bright modes and dark modes in spoof localized surface plasmons (LSPs) generated by ultrathin corrugated metallic disks. As two such disks with asymmetric geometries are placed in close proximity, we find that dark modes (in multipoles) of one disk emerge by coupling with the bright modes (in dipoles) of the other disk. Then we further observe multiple Fano resonances due to destructive interferences of dark modes with the overlapping and broadened bright modes. These Fano line-shapes clearly exhibit the strong polarization dependence. We design and fabricate the ultrathin corrugated bi-disk structure in the microwave frequency, and the measurement results show reasonable agreement with theoretical predictions and numerical simulations. Such multiple Fano resonances could be exploited for the plasmonic devices at lower frequencies.


Laser & Photonics Reviews | 2014

Ultrathin plasmonic metamaterial for spoof localized surface plasmons

Xiaopeng Shen; Tie Jun Cui


Laser & Photonics Reviews | 2014

Planar bifunctional Luneburg-fisheye lens made of an anisotropic metasurface

Xiang Wan; Xiaopeng Shen; Yu Luo; Tie Jun Cui


ACS Photonics | 2015

Combined System for Efficient Excitation and Capture of LSP Resonances and Flexible Control of SPP Transmissions

Zhen Liao; Xiaopeng Shen; Bai Cao Pan; Jie Zhao; Yu Luo; Tie Jun Cui


Laser & Photonics Reviews | 2017

Spoof plasmon hybridization

Jingjing Zhang; Zhen Liao; Yu Luo; Xiaopeng Shen; Stefan A. Maier; Tie Jun Cui


Archive | 2015

High-order localized spoof surface plasmon resonances and experimental

Yu Luo; Xiaopeng Shen; Stefan A. Maier; Tie Jun Cui

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Yu Luo

Imperial College London

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Yan Yang

Southeast University

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Jie Zhao

Southeast University

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