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Guolu Yin

Researcher at Chongqing University

Publications -  131
Citations -  2247

Guolu Yin is an academic researcher from Chongqing University. The author has contributed to research in topics: Fiber laser & Photonic-crystal fiber. The author has an hindex of 24, co-authored 100 publications receiving 1710 citations. Previous affiliations of Guolu Yin include Beijing Jiaotong University & University of Ottawa.

Papers
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Intensity modulated refractive index sensor based on optical fiber Michelson interferometer

TL;DR: In this article, an optical fiber Michelson interferometer (MI)-based sensor was proposed to overcome the cross-sensitivity problem between surrounding RI and temperature, which achieved a high resolution of 4.9 × 10−6 RIU and sensitivity of −202.46 dB/RIU.
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Simultaneous measurement of pressure and temperature by employing Fabry-Perot interferometer based on pendant polymer droplet

TL;DR: The proposed Fabry-Perot interferometer exhibits a wavelength shift of the interference fringes that corresponds to a temperature sensitivity of 249 pm/°C and a pressure sensitivity of 1130 pm/MPa, respectively, around the wavelength of 1560 nm.
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Simultaneous measurement of strain and temperature by employing fiber Mach-Zehnder interferometer

TL;DR: A novel fiber in-line Mach-Zehnder interferometer with a large fringe visibility of up to 17 dB, which was fabricated by misaligned splicing a short section of thin core fiber between two sections of standard single-mode fiber could be used to realize simultaneous measurement of tensile strain and temperature.
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Label-free glucose biosensor based on enzymatic graphene oxide-functionalized tilted fiber grating

TL;DR: In this article, a label-free biosensor based on graphene oxide (GO) and glucose oxidase (GOD) functionalized tilted fiber grating (TFG) with large tilted angle is proposed for low concentration glucose detection.
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High-sensitivity strain sensor based on in-fiber rectangular air bubble.

TL;DR: A unique rectangular air bubble is demonstrated by means of splicing two sections of standard single mode fibers together and tapering the splicing joint to develop a promising high-sensitivity strain sensor based on Fabry-Perot interference.