4.4 Article

Modeling of a Graphene Nanoribbon-based Microfluidic Surface Plasmon Resonance Biosensor

Journal

PLASMONICS
Volume 17, Issue 2, Pages 745-752

Publisher

SPRINGER
DOI: 10.1007/s11468-021-01573-9

Keywords

Surface plasmon resonance; Affinity biosensor; 2D material; Graphene; Numerical modeling

Funding

  1. Spanish Ministry Ministerio de Economia y Competitividad under project HERON [TEC 2017-84846-R]
  2. Ministerio de Economia y Competitividad [TEC 2017-84846-R]
  3. CRUE-CSIC
  4. Springer Nature

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This study investigated a surface plasmon resonance biosensor based on a graphene nanoribbon array in a microfluidic flow cell operating in a flow-over format. The optical response and performance of the biosensor were analyzed in terms of the limit of detection, which was found to be optimized by specific values of the fill fraction. Fabrication issues were also discussed, with implications for the design and implementation of SPR biosensors using nanopatterned 2D materials.
A surface plasmon resonance (SPR) biosensor based on a graphene nanoribbon array in a microfluidic flow cell operating in a flow-over format is studied. The optical response of the biosensor is numerically obtained by using rigorous couple wave analysis (RCWA). The performance of the biosensor is described in terms of the limit of detection, which is calculated as a function of key nanoribbon dimensional parameters, such as strip thickness and width, and fill fraction (nanoribbon width to array period ratio). The analysis shows that there are specific values of the fill fraction that optimize, that is, minimize, the limit of detection for particular nanoribbon dimensions. Fabrication issues are also discussed. This study is expected to assist in the design and implementation of SPR biosensors based on nanopatterned 2D materials.

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