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Linfang Shen

Researcher at Zhejiang University of Technology

Publications -  111
Citations -  2608

Linfang Shen is an academic researcher from Zhejiang University of Technology. The author has contributed to research in topics: Photonic crystal & Terahertz radiation. The author has an hindex of 26, co-authored 103 publications receiving 2287 citations. Previous affiliations of Linfang Shen include Kunming University of Science and Technology & Royal Institute of Technology.

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Breaking Lorentz reciprocity to overcome the time-bandwidth limit in physics and engineering

TL;DR: These findings revise prevailing paradigms for linear, time-invariant resonant systems, challenging the doctrine that high-quality resonances must invariably be narrowband and providing the possibility of developing devices with unprecedentedly high time-bandwidth performance.
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Design of two-dimensional photonic crystals with large absolute band gaps using a genetic algorithm

TL;DR: In this paper, the design of two-dimensional photonic crystals with large absolute band gaps using a genetic algorithm is described, where the absolute band gap is defined as the gap between the absolute bands.
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Finite-size effects of a left-handed material slab on the image quality.

TL;DR: The characteristics of an imaging system formed by a left-handed material (LHM) slab of finite length are studied, and the influence of the finite length of the slab on the image quality is analyzed.
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Terahertz surface plasmon polaritons on periodically corrugated metal surfaces.

TL;DR: A rigorous method based on a modal expansion of electromagnetic fields for analyzing surface plasmon polaritons (SPPs) on a periodically corrugated metal surface has been formulated and takes into account the finite conductivity of the metal as well as higher-order modes within the grooves of the surface structure.
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Ultrahigh Birefringent Photonic Crystal Fiber With Ultralow Confinement Loss

TL;DR: In this article, a photonic crystal fiber with circular air holes in the fiber cladding and elliptical air holes inside the fiber core is proposed to achieve both ultrahigh birefringence and ultralow confinement loss.