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Jinhui Yuan

Researcher at Beijing University of Posts and Telecommunications

Publications -  337
Citations -  2484

Jinhui Yuan is an academic researcher from Beijing University of Posts and Telecommunications. The author has contributed to research in topics: Photonic-crystal fiber & Dispersion (optics). The author has an hindex of 20, co-authored 285 publications receiving 1694 citations. Previous affiliations of Jinhui Yuan include University of Science and Technology Beijing & Hong Kong Polytechnic University.

Papers
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Experimental demonstration of 608Gbit/s short reach transmission employing half-cycle 16QAM Nyquist-SCM signal and direct detection with 25Gbps EML.

TL;DR: To the best of authors' knowledge, this is the highest reported baud rate of half-cycle 16QAM Nyquist-SCM signal and the highest bit rate employing IM/DD and 25Gbps EML in a four lanes LAN-WDM architecture for short reach systems in the O band.
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Sensing Characteristics of Fiber Fabry-Perot Sensors Based on Polymer Materials

TL;DR: A simple optic-fiber Fabry-Perot (FP) sensing technique was proposed and experimentally investigated by using polymer material to connect the ends of two singlemode fibers to demonstrate a good linear response and repeatability to UV intensity for all four polymer materials.
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Comprehensive analysis of passive generation of parabolic similaritons in tapered hydrogenated amorphous silicon photonic wires.

TL;DR: Numerical simulations show that initial Gaussian pulses will evolve into the parabolic pulses in the waveguide taper designed, and the impacts of length dependent higher-order effects, linear and nonlinear losses including two-photon absorption, and photon-generated free carriers, on the pulse evolutions are characterized.
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Coherent Anti-Stokes Raman Scattering Microscopy by Dispersive Wave Generations in a Polarization Maintaining Photonic Crystal Fiber

TL;DR: In this article, the polarization maintaining photonic crystal flber (PM-PCF) with two zero dispersion wavelengths is designed and fabricated by the improved stack-and-draw technology in our laboratory.
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Flat Supercontinuum Generation within the Telecommunication Wave Bands in a Photonic Crystal Fiber with Central Holes

TL;DR: In this paper, a train of femtosecond pulses generated by a mode-locked Ti:sapphire laser into the fundamental mode of a photonic crystal fiber with central holes fabricated in the lab was used to generate flat supercontinuum in the telecommunication wave bands of E+S+C.