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Xiaopeng Shen

Researcher at China University of Mining and Technology

Publications -  107
Citations -  5615

Xiaopeng Shen is an academic researcher from China University of Mining and Technology. The author has contributed to research in topics: Plasmon & Surface plasmon polariton. The author has an hindex of 22, co-authored 98 publications receiving 4445 citations. Previous affiliations of Xiaopeng Shen include Southeast University.

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Conformal surface plasmons propagating on ultrathin and flexible films

TL;DR: Con conformal surface plasmons (CSPs), surface plasmon waves that can propagate on ultrathin and flexible films to long distances in a wide broadband range from microwave to mid-infrared frequencies are proposed.
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Polarization-independent wide-angle triple-band metamaterial absorber.

TL;DR: The triple-band absorber is a promising candidate as absorbing elements in scientific and technical applications because of its multiband absorption, polarization insensitivity, and wide-angle response.
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Broadband and high-efficiency conversion from guided waves to spoof surface plasmon polaritons

TL;DR: In this article, a smooth bridge between the conventional coplanar waveguide with 50 Ω impedance and plasmonic waveguide (e.g., an ultrathin corrugated metallic strip) has been proposed in the microwave frequency, which converts the guided waves to spoof SPPs with high efficiency in broadband.
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Ultrathin multiband gigahertz metamaterial absorbers

TL;DR: In this paper, the authors proposed ultrathin multiband metamaterial absorbers in the microwave frequencies in which the design, analysis, fabrication, and measurement of the absorbers working in multiple bands are presented.
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Triple-band terahertz metamaterial absorber: Design, experiment, and physical interpretation

TL;DR: In this article, the authors demonstrate the design, characterization, and interference-theory interpretation of a terahertz triple-band metamaterial absorber (MA) with 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.