• DocumentCode
    3604868
  • Title

    Graphene-Based D-Shaped Polymer FBG for Highly Sensitive Erythrocyte Detection

  • Author

    Yao, B.C. ; Wu, Y. ; Webb, D.J. ; Zhou, J.H. ; Rao, Y.J. ; Pospori, A. ; Yu, C.B. ; Gong, Y. ; Chen, Y.F. ; Wang, Z.G.

  • Author_Institution
    Key Lab. of Opt. Fiber Sensing & Commun., Univ. of Electron. Sci. & Technol. of China, Chengdu, China
  • Volume
    27
  • Issue
    22
  • fYear
    2015
  • Firstpage
    2399
  • Lastpage
    2402
  • Abstract
    Graphene-based silica fiber-optic sensors, with high sensitivity, fast response, and low cost, have shown great promise for gas sensing applications. In this letter, by covering a monolayer of p-doped graphene on a D-shaped microstructured polymer fiber Bragg grating (FBG), we propose and demonstrate a novel biochemical probe sensor, the graphene-based D-shaped polymer FBG (GDPFBG). Due to the graphene-based surface evanescent field enhancement, this sensor shows high sensitivity to detect surrounding biochemical parameters. By monitoring the Bragg peak locations of the GDPFBG online, human erythrocyte (red blood cell) solutions with different cellular concentrations ranging from 0 to 104 ppm were detected precisely, with the maximum resolution of sub-ppm. Such a sensor is structurally compact, is clinically acceptable, and provides good recoverability, offering a state-of-the-art polymer-fiber-based sensing platform for highly sensitive in situ and in vivo cell detection applications.
  • Keywords
    Bragg gratings; biosensors; blood; cellular biophysics; fibre optic sensors; gas sensors; graphene; monolayers; optical polymers; silicon compounds; Bragg peak locations; C-SiO2; D-shaped microstructured polymer fiber Bragg grating; GDPFBG online; biochemical parameters; biochemical probe sensor; cellular concentrations; gas sensing applications; graphene-based D-shaped polymer FBG; graphene-based silica fiber-optic sensor; graphene-based surface evanescent field enhancement; highly sensitive erythrocyte detection; human erythrocyte solutions; in situ cell detection; in vivo cell detection; monolayer; p-doped graphene; polymer-fiber-based sensing platform; red blood cell; Bragg gratings; Graphene; Optical fiber sensors; Optical fibers; Polymers; Erythrocyte sensor; Fiber Bragg gratings; Optical fiber sensors; P-doped graphene; erythrocyte sensor; fiber Bragg gratings; p-doped graphene;
  • fLanguage
    English
  • Journal_Title
    Photonics Technology Letters, IEEE
  • Publisher
    ieee
  • ISSN
    1041-1135
  • Type

    jour

  • DOI
    10.1109/LPT.2015.2466614
  • Filename
    7219398