4.7 Article

Ultrasensitive Label-Free Biosensor Based on the Graphene-Oxide-Coated-U-Bent Long-Period Fiber Grating Inscribed in a Two-Mode Fiber

Journal

JOURNAL OF LIGHTWAVE TECHNOLOGY
Volume 39, Issue 12, Pages 4013-4019

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/JLT.2020.3027769

Keywords

Refractive index; Sensitivity; Optical fiber sensors; Biosensors; Molecular biophysics; Optical fibers; Biosensor; graphene-oxide; long-period fiber grating; two-mode fiber; U-bent

Funding

  1. National Key Research and Development Project of China [2018YFF01013203]
  2. Science Foundation Project of Tianjin city [14RCGFGX00844]
  3. Seed Foundation of Tianjin University [2020XYF-0045]

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This article introduces a new biosensor with high sensitivity and compactness for detecting human IgG. The sensor immobilizes goat anti-human IgG for recognition of human IgG through covalent bond. Experimentally, the sensor is highly sensitive to the surrounding refractive index and has a low detection limit.
In this article, we theoretically and experimentally report a newly-designed biosensor, which consists of a particular graphene-oxide (GO)-coated-U-bent long-period fiber grating inscribed in a two-mode fiber (LPFG-TMF). Due to the enhancement of evanescent field, the bent LPFG-TMF is more sensitive to the surrounding refractive index and it allows an extremely high sensitivity. The impact of bent radius on the sensing performance is discussed. The experimental result demonstrates, the sensitivity increases nonlinearly with the surrounding refractive index and the highest sensitivity reaches 6632.32 nm/RIU in the refractive index region from 1.3731 to 1.3830. To optimize the immune-sensing performance, the goat anti-human IgG is immobilized on the sensor via covalent bond through EDC/NHS cross-linker for human IgG recognition. The GO-coated-U-bent LPFG-TMF with bent radius of 15 mm has gained a low limit of detection (23 ng/ml) in the 3-20 mu g/ml. In addition, the repeatability of the sensor is also investigated. With its premium ability of easy fabrication, high sensitivity, and compactness, the proposed sensor is adapted for detection of human IgG in clinical diagnostics, pharmaceutical researches, and bioengineering applications.

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