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Jianquan Yao

Researcher at Tianjin University

Publications -  1055
Citations -  11177

Jianquan Yao is an academic researcher from Tianjin University. The author has contributed to research in topics: Terahertz radiation & Laser. The author has an hindex of 35, co-authored 865 publications receiving 7193 citations. Previous affiliations of Jianquan Yao include Jiangsu University & South University of Science and Technology of China.

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Temperature Sensor Based on Photonic Crystal Fiber Filled With Liquid and Silver Nanowires

TL;DR: In this paper, a temperature sensor based on photonic crystal fiber filled with liquid and silver nanowires using surface plasmon resonance is demonstrated both theoretically and experimentally in a large temperature range from 25 °C to 60 °C at different ratios.
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Tunable plasmon-induced transparency in a grating-coupled double-layer graphene hybrid system at far-infrared frequencies.

TL;DR: A grating-coupled double-layer graphene hybrid system is proposed to investigate the plasmon-induced transparency effect at far-infrared frequencies and it is found that the origin of the observed transparency window transforms from Autler-Townes splitting to electromagnetically induced transparency with the increase of the separation distance between the two graphene films.
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Compact terahertz wave polarizing beam splitter

TL;DR: A compact terahertz wave polarizing beam splitter based on a periodic bilayer structure, which operates over a wide THz wavelength range, reveals a large tolerance to fabrication errors.
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A Hollow-Core Photonic Crystal Fiber-Based SPR Sensor With Large Detection Range

TL;DR: In this article, a large detection range surface plasmon resonance (SPR) sensor based on hollow-core photonic crystal fiber is proposed, which consists of an analyte channel in the core hole and a silver nanowire in the cladding holes.
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High Performances for Solution-Pocessed 0D–0D Heterojunction Phototransistors

TL;DR: In this article, field effect phototransistors (FEpTs) based on CsPbBr3-PbS colloidal quantum dot heterostructure dominate to obtain a wide response spectral range and high performance.